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Data Science & Machine Learning using Python
There is no pre-requisite as such. Anyone with an aptitude for learning programming and interest for doing analysis on data can be the good fit for this course. Knowledge on Data Science using Python is good to have but not a must have to do this program.
Enroll Now

Course Number:-

DATA-0-102

Course :

Duration :-

48 hours

Trainers

Experienced Trainers

Payments

Flexible Payment Plans
  • Online live classroom available
  • Quality learning materials
  • Small Class Sizes
  • State of the Art Facility
  • Free Retakes
  • Instructor Led Classroom training
  • Certified Industry Experienced Teachers
  • 100% Job Placement assistance

About this course

Benefits

  • High Demand: Data science is one of the most sought-after career paths today, with job demand predicted to grow significantly. LinkedIn forecasts 11.5 million new data science jobs by 2026.
  • Lucrative Salaries: Data scientists earn an average salary of $116,100 annually in the U.S. (source: Glassdoor).
  • Wide Applications: Data science skills are valuable across industries such as healthcare, banking, consulting, and e-commerce.
  • Business Impact: Data scientists play a critical role in helping organizations make smarter decisions and improve business outcomes.
  • Skill Development: Gain expertise in analytics steps, including data collection, data wrangling, exploration, modeling, and visualization.

Course Content

Data Science Fundamentals and Methodology

  • What Is Data Science?
  • Fundamentals of Data Science
  • Understanding Big Data and Its Role in Digital Transformation
  • What Makes Someone a Data Scientist?
  • Different Roles in Data Science
  • Applications of Data Science

Tools and Methodology for Data Science

  • Tools for Data Science Overview
  • Introduction to Jupyter Notebook for Python
  • Introduction to RStudio for R
  • Data Science Methodology Overview
  • Problem Statement and Business Understanding
  • Analytic Approach
  • Data Requirements and Collection
  • Data Understanding and Preparation
  • Modeling, Evaluation, and Deployment
  • Feedback and Iteration

Python Programming for Data Science

  • Introduction to Python Basics
  • Python Data Structures
  • Python Programming Fundamentals
  • Working with Data in Python
  • Analyzing Sample Data in Python

Databases, SQL, and Data Analysis

  • Introduction to Databases & SQL Concepts
  • Advanced SQL
  • Accessing Databases Using Python
  • Sample Database Access Using Python
  • Importing and Wrangling Datasets
  • Exploratory Data Analysis
  • Model Development and Evaluation

Data Visualization with Python

  • Introduction to Data Visualization Tools
  • Basic and Specialized Visualization Tools
  • Advanced Data Visualization Techniques

Machine Learning Fundamentals

  • Introduction to Machine Learning
  • Regression
  • Classification
  • Clustering
  • Recommender Systems

Advanced Machine Learning Concepts

  • Supervised Machine Learning
  • Unsupervised Machine Learning
  • Text Analytics & Natural Language Processing (NLP)

Capstone Project

  • Use Case Identification and Dataset Selection
  • ETL Process and Feature Engineering
  • Model Definition, Training, and Evaluation
  • Model Tuning and Deployment
  • Documentation and Storytelling

What you will learn?

  1. Fundamentals of data science and its applications.
  2. Tools such as Jupyter Notebook and RStudio for data analysis.
  3. Data science methodology from problem statement to deployment.
  4. Python programming basics and data manipulation skills.
  5. Database concepts, SQL querying, and accessing databases with Python.
  6. Techniques for data visualization and interpretation using Python.
  7. Machine learning fundamentals including regression, classification, and clustering.

Course Objective

This course is ideal for individuals seeking a career in programming or those currently working as developers, data analysts, researchers, programmers, or web developers. Covering both foundational and advanced data science topics, it is designed to help IT developers, project managers, and analytics professionals enhance their skills and advance their analytics careers.

Hands On Label

FAQ

What is Data Science & Machine Learning with Python Course?

This course focuses on the practice of data analytics, the role of the Data Scientist, the main phases of the Data Analytics Lifecycle, analyzing and exploring data with python, statistics for model building and evaluation, the theory and methods of advanced analytics and statistical modeling, the technology and tools that can be used for advanced analytics, operationalizing an analytics project, and data visualization techniques.

Why Data Science & Machine Learning with Python Course?

Data science jobs are the most demanding jobs in the Information Technology field today. Prospective job seekers have numerous opportunities. It is the fastest growing job on LinkedIn and is predicted to create 11.5 million jobs by 2026. Data Science is one of the most highly paid jobs. According to Glassdoor, Data Scientists make an average of $116,100 per year. There are numerous applications of Data Science. It is widely used in health-care, banking, consultancy services, and e-commerce industries. Data Science is a very versatile field.

Who should go for this Training?

Individuals looking for a career in programming or are currently working as developers, or web developers should attend this course. The course covers basic data science along with all advance features that an individual will perform as a data science professional. So, this course will help IT Developer, Project Manager and Analytics Professional to grow in their analytics journey.

What background knowledge is necessary?

Not required as such. Anyone with an aptitude for learning programming and has interest for doing analysis on data can be a good fit for this course. The course will use python programming language for doing data analysis so python programming language will be taught as part of this course.

What will I learn in this course?

·         Understand the basic concepts of data science.

·         Understand the tools used for data science and use those tools during the course.

·         Understand data science methodology

·         Understand databases and SQL concepts used in data science

·         Use Python programming for data analysis, data visualization & machine learning in data science

·         Understand the concept and usage of different machine learning algorithms using Python.

·         Use your concept of course understanding in capstone project using Python.

What is the duration of this Course?

Total Duration is 48 hours

How much does a Data Scientist earn?

Salary Estimates as on October 8th, 2020 in for a Data Scientist in USA are

Zip Recruiter – 76K-160K per Year

Glass Door – 83K-150K per Year

PaySclae USA – 67K-130K per Year

The average salary for a Data Scientist in Detroit, Michigan is $87815 as per PaySclae USA.

What are the prerequisites for this course?

There is no pre-requisite as such. Anyone with an aptitude for learning programming and interest for doing analysis on data can be the good fit for this course. The course will use python programming language for doing data analysis so python programming language will be taught as part of this course.

What skills do I learn in this course - Data Science with Python?

Here are few to mention practice of data analytics, the role of the Data Scientist, the main phases of the Data Analytics Lifecycle, analyzing and exploring data with python, statistics for model building and evaluation using the following tools and methods.

·         Jupyter Notebook for Python

·         RStudio for R

·         Python Programming for Data Science

·         Databases and SQL for Data Science

·         Machine Learning with Python

·         Deep Learning

How do I become a Data Scientist?

This course is designed to give you an insight into Industry driven Data Science tools and methodologies, which is enough to prepare you to excel in your next role as a Data Scientist. The program will train you on R and Python, Machine Learning techniques, data reprocessing, regression, clustering, data analytics, statistics for model building and evaluation, the theory and methods of advanced analytics and statistical modeling, the technology and tools that can be used for advanced analytics, operationalizing an analytics project, and data visualization techniques.

What software/technology stacks do you use?

While we do work in R and Python during the training, knowledge of any programming language will work- as we teach the principles from a “software agnostic” point of view, the principles transfer across programming languages. We teach how to interpret data, and then how to apply machine learning to take that to the next level.

How much statistics will I need to know?

We work hard to ensure that no prior statistics knowledge is required. We will teach you all the basics you need to know before and during the bootcamps. We cover correlations, hypothesis testing, and Linear Regression in the Course, all at a level appropriate for someone with no/little statistics experience.

Do we receive grades?

Yes, you will receive grades for your work during the course.

Who provides the certification and how long does its valid?

Once you successfully complete the Data Science with Python, Machine Learning & AI Professional course, Global IT will provide you with an industry-recognized course completion certificate which will have a lifelong validity.

Do you provide any material or practice tests during the course?

Yes, we provide both course materials and practice tests as part of our course curriculum to help you prepare for the actual certification exam.

What is the difference between a Data Scientist, Data Analyst, and Data Engineer?

We’ve certainly seen variation in regards to what employers have in mind when they use these terms, so please consider the answers below as general guidelines.

A Data Analyst is someone who creates and communicates insights from data to measure outcomes, make predictions, and guide business decisions. Often, there is a lighter coding burden placed upon someone with the title Data Analyst, though they may be expected to know certain languages or packages in R or python.

A Data Engineer is the designer, builder, and manager of the information or "big data" infrastructure. Each develops the architecture that helps analyze and process data in the way the organization needs it – and they make sure those systems are performing smoothly.

The term Data Scientist is used the most broadly. A job posting for a Data Scientist might describe a role identical to others calling for “data analyst,” though there is usually more diverse coding skills needed for a data scientist job. For the most part, data scientists are asked to participate in the entire cycle of problems and solutions. They help identify opportunities for companies to use data, while also finding, collecting, and integrating relevant data sources, performing analyses of varying degrees of complexity, writing code and creating tools that teams and businesses can use over time, and telling the story of what they’ve done to company stakeholders.

  • Online live classroom available
  • Quality learning materials
  • Small Class Sizes
  • State of the Art Facility
  • Free Retakes
  • Instructor Led Classroom training
  • Certified Industry Experienced Teachers
  • 100% Job Placement assistance

This course is ideal for individuals seeking a career in programming or those currently working as developers, data analysts, researchers, programmers, or web developers. Covering both foundational and advanced data science topics, it is designed to help IT developers, project managers, and analytics professionals enhance their skills and advance their analytics careers.

  • High Demand: Data science is one of the most sought-after career paths today, with job demand predicted to grow significantly. LinkedIn forecasts 11.5 million new data science jobs by 2026.
  • Lucrative Salaries: Data scientists earn an average salary of $116,100 annually in the U.S. (source: Glassdoor).
  • Wide Applications: Data science skills are valuable across industries such as healthcare, banking, consulting, and e-commerce.
  • Business Impact: Data scientists play a critical role in helping organizations make smarter decisions and improve business outcomes.
  • Skill Development: Gain expertise in analytics steps, including data collection, data wrangling, exploration, modeling, and visualization.
  1. Fundamentals of data science and its applications.
  2. Tools such as Jupyter Notebook and RStudio for data analysis.
  3. Data science methodology from problem statement to deployment.
  4. Python programming basics and data manipulation skills.
  5. Database concepts, SQL querying, and accessing databases with Python.
  6. Techniques for data visualization and interpretation using Python.
  7. Machine learning fundamentals including regression, classification, and clustering.

Data Science Fundamentals and Methodology

  • What Is Data Science?
  • Fundamentals of Data Science
  • Understanding Big Data and Its Role in Digital Transformation
  • What Makes Someone a Data Scientist?
  • Different Roles in Data Science
  • Applications of Data Science

Tools and Methodology for Data Science

  • Tools for Data Science Overview
  • Introduction to Jupyter Notebook for Python
  • Introduction to RStudio for R
  • Data Science Methodology Overview
  • Problem Statement and Business Understanding
  • Analytic Approach
  • Data Requirements and Collection
  • Data Understanding and Preparation
  • Modeling, Evaluation, and Deployment
  • Feedback and Iteration

Python Programming for Data Science

  • Introduction to Python Basics
  • Python Data Structures
  • Python Programming Fundamentals
  • Working with Data in Python
  • Analyzing Sample Data in Python

Databases, SQL, and Data Analysis

  • Introduction to Databases & SQL Concepts
  • Advanced SQL
  • Accessing Databases Using Python
  • Sample Database Access Using Python
  • Importing and Wrangling Datasets
  • Exploratory Data Analysis
  • Model Development and Evaluation

Data Visualization with Python

  • Introduction to Data Visualization Tools
  • Basic and Specialized Visualization Tools
  • Advanced Data Visualization Techniques

Machine Learning Fundamentals

  • Introduction to Machine Learning
  • Regression
  • Classification
  • Clustering
  • Recommender Systems

Advanced Machine Learning Concepts

  • Supervised Machine Learning
  • Unsupervised Machine Learning
  • Text Analytics & Natural Language Processing (NLP)

Capstone Project

  • Use Case Identification and Dataset Selection
  • ETL Process and Feature Engineering
  • Model Definition, Training, and Evaluation
  • Model Tuning and Deployment
  • Documentation and Storytelling

What is Data Science & Machine Learning with Python Course?

This course focuses on the practice of data analytics, the role of the Data Scientist, the main phases of the Data Analytics Lifecycle, analyzing and exploring data with python, statistics for model building and evaluation, the theory and methods of advanced analytics and statistical modeling, the technology and tools that can be used for advanced analytics, operationalizing an analytics project, and data visualization techniques.

Why Data Science & Machine Learning with Python Course?

Data science jobs are the most demanding jobs in the Information Technology field today. Prospective job seekers have numerous opportunities. It is the fastest growing job on LinkedIn and is predicted to create 11.5 million jobs by 2026. Data Science is one of the most highly paid jobs. According to Glassdoor, Data Scientists make an average of $116,100 per year. There are numerous applications of Data Science. It is widely used in health-care, banking, consultancy services, and e-commerce industries. Data Science is a very versatile field.

Who should go for this Training?

Individuals looking for a career in programming or are currently working as developers, or web developers should attend this course. The course covers basic data science along with all advance features that an individual will perform as a data science professional. So, this course will help IT Developer, Project Manager and Analytics Professional to grow in their analytics journey.

What background knowledge is necessary?

Not required as such. Anyone with an aptitude for learning programming and has interest for doing analysis on data can be a good fit for this course. The course will use python programming language for doing data analysis so python programming language will be taught as part of this course.

What will I learn in this course?

·         Understand the basic concepts of data science.

·         Understand the tools used for data science and use those tools during the course.

·         Understand data science methodology

·         Understand databases and SQL concepts used in data science

·         Use Python programming for data analysis, data visualization & machine learning in data science

·         Understand the concept and usage of different machine learning algorithms using Python.

·         Use your concept of course understanding in capstone project using Python.

What is the duration of this Course?

Total Duration is 48 hours

How much does a Data Scientist earn?

Salary Estimates as on October 8th, 2020 in for a Data Scientist in USA are

Zip Recruiter – 76K-160K per Year

Glass Door – 83K-150K per Year

PaySclae USA – 67K-130K per Year

The average salary for a Data Scientist in Detroit, Michigan is $87815 as per PaySclae USA.

What are the prerequisites for this course?

There is no pre-requisite as such. Anyone with an aptitude for learning programming and interest for doing analysis on data can be the good fit for this course. The course will use python programming language for doing data analysis so python programming language will be taught as part of this course.

What skills do I learn in this course - Data Science with Python?

Here are few to mention practice of data analytics, the role of the Data Scientist, the main phases of the Data Analytics Lifecycle, analyzing and exploring data with python, statistics for model building and evaluation using the following tools and methods.

·         Jupyter Notebook for Python

·         RStudio for R

·         Python Programming for Data Science

·         Databases and SQL for Data Science

·         Machine Learning with Python

·         Deep Learning

How do I become a Data Scientist?

This course is designed to give you an insight into Industry driven Data Science tools and methodologies, which is enough to prepare you to excel in your next role as a Data Scientist. The program will train you on R and Python, Machine Learning techniques, data reprocessing, regression, clustering, data analytics, statistics for model building and evaluation, the theory and methods of advanced analytics and statistical modeling, the technology and tools that can be used for advanced analytics, operationalizing an analytics project, and data visualization techniques.

What software/technology stacks do you use?

While we do work in R and Python during the training, knowledge of any programming language will work- as we teach the principles from a “software agnostic” point of view, the principles transfer across programming languages. We teach how to interpret data, and then how to apply machine learning to take that to the next level.

How much statistics will I need to know?

We work hard to ensure that no prior statistics knowledge is required. We will teach you all the basics you need to know before and during the bootcamps. We cover correlations, hypothesis testing, and Linear Regression in the Course, all at a level appropriate for someone with no/little statistics experience.

Do we receive grades?

Yes, you will receive grades for your work during the course.

Who provides the certification and how long does its valid?

Once you successfully complete the Data Science with Python, Machine Learning & AI Professional course, Global IT will provide you with an industry-recognized course completion certificate which will have a lifelong validity.

Do you provide any material or practice tests during the course?

Yes, we provide both course materials and practice tests as part of our course curriculum to help you prepare for the actual certification exam.

What is the difference between a Data Scientist, Data Analyst, and Data Engineer?

We’ve certainly seen variation in regards to what employers have in mind when they use these terms, so please consider the answers below as general guidelines.

A Data Analyst is someone who creates and communicates insights from data to measure outcomes, make predictions, and guide business decisions. Often, there is a lighter coding burden placed upon someone with the title Data Analyst, though they may be expected to know certain languages or packages in R or python.

A Data Engineer is the designer, builder, and manager of the information or "big data" infrastructure. Each develops the architecture that helps analyze and process data in the way the organization needs it – and they make sure those systems are performing smoothly.

The term Data Scientist is used the most broadly. A job posting for a Data Scientist might describe a role identical to others calling for “data analyst,” though there is usually more diverse coding skills needed for a data scientist job. For the most part, data scientists are asked to participate in the entire cycle of problems and solutions. They help identify opportunities for companies to use data, while also finding, collecting, and integrating relevant data sources, performing analyses of varying degrees of complexity, writing code and creating tools that teams and businesses can use over time, and telling the story of what they’ve done to company stakeholders.

Key Features

  • Online live classroom available
  • Quality learning materials
  • Small Class Sizes
  • State of the Art Facility
  • Free Retakes
  • Instructor Led Classroom training
  • Certified Industry Experienced Teachers
  • 100% Job Placement assistance

About Course

Benefits

  • High Demand: Data science is one of the most sought-after career paths today, with job demand predicted to grow significantly. LinkedIn forecasts 11.5 million new data science jobs by 2026.
  • Lucrative Salaries: Data scientists earn an average salary of $116,100 annually in the U.S. (source: Glassdoor).
  • Wide Applications: Data science skills are valuable across industries such as healthcare, banking, consulting, and e-commerce.
  • Business Impact: Data scientists play a critical role in helping organizations make smarter decisions and improve business outcomes.
  • Skill Development: Gain expertise in analytics steps, including data collection, data wrangling, exploration, modeling, and visualization.

What You Will Learn

  1. Fundamentals of data science and its applications.
  2. Tools such as Jupyter Notebook and RStudio for data analysis.
  3. Data science methodology from problem statement to deployment.
  4. Python programming basics and data manipulation skills.
  5. Database concepts, SQL querying, and accessing databases with Python.
  6. Techniques for data visualization and interpretation using Python.
  7. Machine learning fundamentals including regression, classification, and clustering.

Course Content

Data Science Fundamentals and Methodology

  • What Is Data Science?
  • Fundamentals of Data Science
  • Understanding Big Data and Its Role in Digital Transformation
  • What Makes Someone a Data Scientist?
  • Different Roles in Data Science
  • Applications of Data Science

Tools and Methodology for Data Science

  • Tools for Data Science Overview
  • Introduction to Jupyter Notebook for Python
  • Introduction to RStudio for R
  • Data Science Methodology Overview
  • Problem Statement and Business Understanding
  • Analytic Approach
  • Data Requirements and Collection
  • Data Understanding and Preparation
  • Modeling, Evaluation, and Deployment
  • Feedback and Iteration

Python Programming for Data Science

  • Introduction to Python Basics
  • Python Data Structures
  • Python Programming Fundamentals
  • Working with Data in Python
  • Analyzing Sample Data in Python

Databases, SQL, and Data Analysis

  • Introduction to Databases & SQL Concepts
  • Advanced SQL
  • Accessing Databases Using Python
  • Sample Database Access Using Python
  • Importing and Wrangling Datasets
  • Exploratory Data Analysis
  • Model Development and Evaluation

Data Visualization with Python

  • Introduction to Data Visualization Tools
  • Basic and Specialized Visualization Tools
  • Advanced Data Visualization Techniques

Machine Learning Fundamentals

  • Introduction to Machine Learning
  • Regression
  • Classification
  • Clustering
  • Recommender Systems

Advanced Machine Learning Concepts

  • Supervised Machine Learning
  • Unsupervised Machine Learning
  • Text Analytics & Natural Language Processing (NLP)

Capstone Project

  • Use Case Identification and Dataset Selection
  • ETL Process and Feature Engineering
  • Model Definition, Training, and Evaluation
  • Model Tuning and Deployment
  • Documentation and Storytelling

Course Objective

This course is ideal for individuals seeking a career in programming or those currently working as developers, data analysts, researchers, programmers, or web developers. Covering both foundational and advanced data science topics, it is designed to help IT developers, project managers, and analytics professionals enhance their skills and advance their analytics careers.

Additional Information

Class Schedule

Start Date
Days
Timings
Duration
May 11, 2026
M,T,W,Th
5:30pm-10:00pm
3 Weeks
June 8, 2026
M,T,W,Th
5:30pm-10:00pm
3 Weeks
July 13, 2026
M,T,W,Th
5:30pm-10:00pm
3 Weeks
August 10, 2026
M,T,W,Th
5:30pm-10:00pm
3 Weeks
September 14, 2026
M,T,W,Th
5:30pm-10:00pm
3 Weeks

FAQ

What is Data Science & Machine Learning with Python Course?

This course focuses on the practice of data analytics, the role of the Data Scientist, the main phases of the Data Analytics Lifecycle, analyzing and exploring data with python, statistics for model building and evaluation, the theory and methods of advanced analytics and statistical modeling, the technology and tools that can be used for advanced analytics, operationalizing an analytics project, and data visualization techniques.

Why Data Science & Machine Learning with Python Course?

Data science jobs are the most demanding jobs in the Information Technology field today. Prospective job seekers have numerous opportunities. It is the fastest growing job on LinkedIn and is predicted to create 11.5 million jobs by 2026. Data Science is one of the most highly paid jobs. According to Glassdoor, Data Scientists make an average of $116,100 per year. There are numerous applications of Data Science. It is widely used in health-care, banking, consultancy services, and e-commerce industries. Data Science is a very versatile field.

Who should go for this Training?

Individuals looking for a career in programming or are currently working as developers, or web developers should attend this course. The course covers basic data science along with all advance features that an individual will perform as a data science professional. So, this course will help IT Developer, Project Manager and Analytics Professional to grow in their analytics journey.

What background knowledge is necessary?

Not required as such. Anyone with an aptitude for learning programming and has interest for doing analysis on data can be a good fit for this course. The course will use python programming language for doing data analysis so python programming language will be taught as part of this course.

What will I learn in this course?

·         Understand the basic concepts of data science.

·         Understand the tools used for data science and use those tools during the course.

·         Understand data science methodology

·         Understand databases and SQL concepts used in data science

·         Use Python programming for data analysis, data visualization & machine learning in data science

·         Understand the concept and usage of different machine learning algorithms using Python.

·         Use your concept of course understanding in capstone project using Python.

What is the duration of this Course?

Total Duration is 48 hours

How much does a Data Scientist earn?

Salary Estimates as on October 8th, 2020 in for a Data Scientist in USA are

Zip Recruiter – 76K-160K per Year

Glass Door – 83K-150K per Year

PaySclae USA – 67K-130K per Year

The average salary for a Data Scientist in Detroit, Michigan is $87815 as per PaySclae USA.

What are the prerequisites for this course?

There is no pre-requisite as such. Anyone with an aptitude for learning programming and interest for doing analysis on data can be the good fit for this course. The course will use python programming language for doing data analysis so python programming language will be taught as part of this course.

What skills do I learn in this course - Data Science with Python?

Here are few to mention practice of data analytics, the role of the Data Scientist, the main phases of the Data Analytics Lifecycle, analyzing and exploring data with python, statistics for model building and evaluation using the following tools and methods.

·         Jupyter Notebook for Python

·         RStudio for R

·         Python Programming for Data Science

·         Databases and SQL for Data Science

·         Machine Learning with Python

·         Deep Learning

How do I become a Data Scientist?

This course is designed to give you an insight into Industry driven Data Science tools and methodologies, which is enough to prepare you to excel in your next role as a Data Scientist. The program will train you on R and Python, Machine Learning techniques, data reprocessing, regression, clustering, data analytics, statistics for model building and evaluation, the theory and methods of advanced analytics and statistical modeling, the technology and tools that can be used for advanced analytics, operationalizing an analytics project, and data visualization techniques.

What software/technology stacks do you use?

While we do work in R and Python during the training, knowledge of any programming language will work- as we teach the principles from a “software agnostic” point of view, the principles transfer across programming languages. We teach how to interpret data, and then how to apply machine learning to take that to the next level.

How much statistics will I need to know?

We work hard to ensure that no prior statistics knowledge is required. We will teach you all the basics you need to know before and during the bootcamps. We cover correlations, hypothesis testing, and Linear Regression in the Course, all at a level appropriate for someone with no/little statistics experience.

Do we receive grades?

Yes, you will receive grades for your work during the course.

Who provides the certification and how long does its valid?

Once you successfully complete the Data Science with Python, Machine Learning & AI Professional course, Global IT will provide you with an industry-recognized course completion certificate which will have a lifelong validity.

Do you provide any material or practice tests during the course?

Yes, we provide both course materials and practice tests as part of our course curriculum to help you prepare for the actual certification exam.

What is the difference between a Data Scientist, Data Analyst, and Data Engineer?

We’ve certainly seen variation in regards to what employers have in mind when they use these terms, so please consider the answers below as general guidelines.

A Data Analyst is someone who creates and communicates insights from data to measure outcomes, make predictions, and guide business decisions. Often, there is a lighter coding burden placed upon someone with the title Data Analyst, though they may be expected to know certain languages or packages in R or python.

A Data Engineer is the designer, builder, and manager of the information or "big data" infrastructure. Each develops the architecture that helps analyze and process data in the way the organization needs it – and they make sure those systems are performing smoothly.

The term Data Scientist is used the most broadly. A job posting for a Data Scientist might describe a role identical to others calling for “data analyst,” though there is usually more diverse coding skills needed for a data scientist job. For the most part, data scientists are asked to participate in the entire cycle of problems and solutions. They help identify opportunities for companies to use data, while also finding, collecting, and integrating relevant data sources, performing analyses of varying degrees of complexity, writing code and creating tools that teams and businesses can use over time, and telling the story of what they’ve done to company stakeholders.

Get in Touch !

Who are you?

You are giving your express written consent for global information technology to contact you regarding our programs and services using email, telephone or text. This consent is not required to purchase goods/services and you may always call us directly at 866-GO-GIT-GO (464-4846)
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Course Outline

CompTIA A+ emphasizes the technologies and skills IT professionals need to support a hybrid workforce.
Increased reliance on SaaS applications for remote work.
Expanded troubleshooting and how to remotely diagnose and correct common software, hardware, or connectivity problems
Changing core technologies from cloud virtualization and IoT device
security to data management and scripting.
Multiple operating systems encountered by technicians, including their
use cases and how to maintain them.
Changing job roles: Technicians must assess whether to fix issues on-site
or send proprietary technologies directly to vendors.

The New CompTIA A+ Core Series Includes

Expanded baseline security topics essential for IT support, including physical vs. logical security concepts, malware, and more.

A revised approach to operational procedures, covering basic disaster prevention, recovery, and scripting basics.

A stronger focus on networking and device connectivity

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