EDUCBA
AI Machine Learning with R & Python Projects Specialization
EDUCBA

AI Machine Learning with R & Python Projects Specialization

Master Machine Learning with R and Python. Gain hands-on experience building ML models in R and Python through real-world projects.

EDUCBA

Instructor: EDUCBA

Included with Coursera Plus

Get in-depth knowledge of a subject
Beginner level

Recommended experience

2 months at 10 hours a week
Flexible schedule
Earn a career credential
Share your expertise with employers
Get in-depth knowledge of a subject
Beginner level

Recommended experience

2 months at 10 hours a week
Flexible schedule
Earn a career credential
Share your expertise with employers

What you'll learn

  • Apply machine learning algorithms in R and Python to analyze and predict real-world data.

  • Optimize, validate, and interpret models using statistical and computational techniques.

  • Build end-to-end ML projects, from preprocessing to deployment-ready solutions.

Overview

What’s included

Shareable certificate

Add to your LinkedIn profile

Taught in English
Recently updated!

October 2025

71 practice exercises

Advance your subject-matter expertise

  • Learn in-demand skills from university and industry experts
  • Master a subject or tool with hands-on projects
  • Develop a deep understanding of key concepts
  • Earn a career certificate from EDUCBA

Specialization - 6 course series

What you'll learn

  • Apply ML foundations, probability, and statistical concepts in R.

  • Implement regression, classification, and decision tree models.

  • Use ensemble methods like random forests and boosting in R.

Skills you'll gain

Regression Analysis, Random Forest Algorithm, Predictive Modeling, Statistical Analysis, R Programming, Probability Distribution, Decision Tree Learning, Applied Machine Learning, Supervised Learning, Exploratory Data Analysis, Data Manipulation, Statistical Modeling, Data Analysis, Machine Learning, and Statistical Methods

What you'll learn

  • Apply clustering, Naive Bayes, PCA, and neural networks in R.

  • Forecast time series with ARIMA, Prophet, and boosting methods.

  • Implement market basket analysis and optimize predictive models.

Skills you'll gain

R Programming, Machine Learning, Supervised Learning, Time Series Analysis and Forecasting, Artificial Neural Networks, Predictive Modeling, Dimensionality Reduction, Text Mining, Probability & Statistics, Data Mining, Forecasting, Exploratory Data Analysis, Applied Machine Learning, and Unsupervised Learning

What you'll learn

  • Define regression concepts and build simple/multiple models in R.

  • Apply dummy variables, statistical tests, and model validation.

  • Optimize models with backward elimination for predictive accuracy.

Skills you'll gain

Regression Analysis, Statistical Hypothesis Testing, Predictive Modeling, Statistical Modeling, R Programming, Data Validation, Statistical Methods, Data Visualization, Supervised Learning, Feature Engineering, and Data Analysis

What you'll learn

  • Prepare datasets, handle missing values, and apply imputation.

  • Perform correlation analysis and manage data imbalance.

  • Implement clustering with caret and validate ML workflows.

Skills you'll gain

Data Quality, Data Processing, R Programming, Applied Machine Learning, Statistical Analysis, Unsupervised Learning, Analysis, Exploratory Data Analysis, Machine Learning Algorithms, Data Cleansing, Correlation Analysis, Data Validation, Feature Engineering, Data Manipulation, Data Integrity, and Machine Learning

What you'll learn

  • Apply probability, sampling, and distributions to datasets.

  • Use linear algebra and hypothesis testing for data analysis.

  • Build and validate ML models with Python in real-world contexts.

Skills you'll gain

Probability, Statistics, Data Mining, Python Programming, Machine Learning, Sampling (Statistics), Linear Algebra, Statistical Inference, Statistical Hypothesis Testing, Probability Distribution, Statistical Analysis, Machine Learning Algorithms, and Data Analysis

What you'll learn

  • Apply NumPy, Pandas, and Matplotlib for data analysis & visualization.

  • Build, train, and validate supervised & unsupervised ML models.

  • Implement NLP, face recognition, and text classification projects.

Skills you'll gain

Scikit Learn (Machine Learning Library), Applied Machine Learning, Text Mining, Matplotlib, Feature Engineering, Performance Tuning, Python Programming, Supervised Learning, Natural Language Processing, NumPy, Machine Learning, Data Manipulation, Pandas (Python Package), Unsupervised Learning, and Data Visualization

Earn a career certificate

Add this credential to your LinkedIn profile, resume, or CV. Share it on social media and in your performance review.

Instructor

EDUCBA
EDUCBA
522 Courses132,855 learners

Offered by

EDUCBA

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