REG-R.AJ1

Regression Analysis with R

With this Regression Analysis in R course, you’ll build predictive models, stand out in interviews, and secure high-paying roles in data science, analytics, and research.

  • 10 Interactive Lessons and 54 topics mapped to the official exam objectives

Intermediate Self-paced · 1 year access 4.5/5 (100 Reviews)

10Interactive Lessons
54Topics

01 / Skills you'll get

What you will be able to do

Videos courses and tutorials teach you how to run regression models. This one teaches you how to think with them.

In this Regression Analysis with R course, you’ll learn how to uncover meaningful relationships in data, predict outcomes, and build models that can influence real-world decisions. Work with real datasets, tackle hands-on projects and build a job-ready portfolio. Go from simple linear regression to advanced techniques, all through practice, job-relevant scenarios.

No beating about the bush, just applied regression modeling in R, taught in a way that sticks.

  • Build, optimize, and validate predictive models using R, the language trusted by statisticians and data pros.
  • Uncover hidden patterns, measure relationships, and extract powerful insights that drive business impact.
  • Develop a problem-solving mindset to predict sales, analyze trends, and optimize outcomes. 
  • Get hands-on with industry-grade libraries and tools likeggplot2, caret, lm(), and more.
  • Interpret model outputs, diagnose errors, and communicate findings.
  •  Visualize and represent your data insights.

Course Highlights

  • 10 Structured Lessons Comprehensive coverage of core course objectives
  • 1 Year Full Access Self-paced learning accessible anytime on all devices

02 / Lessons & labs

See exactly what you will learn and practice

Download outline (PDF)

Lessons

10 Interactive Lessons · 54 topics
01 Preface 3 topics
  • What this course covers
  • To get the most out of this course
  • Conventions used
02 Getting Started with Regression 10 topics
  • Going back to the origin of regression
  • Regression in the real world
  • Understanding regression concepts
  • Regression versus correlation
  • Discovering different types of regression
  • The R environment
  • Installing R
  • RStudio
  • R packages for regression
  • Summary
03 Basic Concepts – Simple Linear Regression 6 topics
  • Association between variables – covariance and correlation
  • Searching linear relationships
  • Least squares regression
  • Creating a linear regression model
  • Modeling a perfect linear association
  • Summary
04 More Than Just One Predictor – MLR 6 topics
  • Multiple linear regression concepts
  • Building a multiple linear regression model
  • Multiple linear regression with categorical predictor
  • Gradient Descent and linear regression
  • Polynomial regression
  • Summary
05 When the Response Falls into Two Categories – Logistic Regression 5 topics
  • Understanding logistic regression
  • Generalized Linear Model
  • Multiple logistic regression
  • Multinomial logistic regression
  • Summary

03 / FAQs

Questions before you start

Contact us ↗
What exactly will I be able to do after finishing this course?
After you complete our Regression Analysis with R training, you will be able to build, interpret, and present regression models in R to solve real-world problems. Also, you'll have portfolio projects to show for it.
How is this course different from free tutorials?
This course is structured for outcomes, not just knowledge. You’ll get hands-on projects, real-world use cases, and skills you can actually use in a job.
Can I take this course if I’m switching to a data career?
Yes. This is a great starting point if you’re pivoting into data. It helps you build one of the most in-demand skills with immediate application.
What tools or software do I need?
All you need is R and RStudio. Both are free and open-source. We’ll guide you through setup at the beginning of the course.

Build a Portfolio Too Strong for Employers to Ignore

Start building the data career they said you needed experience for.

  • 1 year of full access
  • Certificate of completion
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