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Clustering and Classification with Machine Learning in R
Updated in May 2025.
This course now features Coursera Coach!
A smarter way to learn with interactive, real-time conversations that help you test your knowledge, challenge assumptions, and deepen your understanding as you progress through the course.
This course is a complete guide to supervised and unsupervised learning using R, covering practical data science comprehensively. Companies globally use R to analyze vast data, and mastering it can enhance your career. Unlike other courses, this one provides in-depth knowledge of R's machine learning features, from data reading and cleaning to implementing and evaluating algorithms.
-You'll explore topics such as R framework, data structures, pre-processing, machine learning, model building, and selection.
-Emphasizing real data, you'll use packages like Caret and understand unsupervised learning, dimension reduction, and supervised learning.
-You'll read data, pre-process in R Studio, implement K-means clustering, PCA, Random Forests, and evaluate models.
Ideal for students starting with R Studio data science, those wanting to apply unsupervised learning to real data, and anyone with R experience aiming to enhance practical skills. Prior exposure to common machine learning terms would be needed.
Duration
6 Months
Institution
Packt
Format
Online
Eligibility Criteria
school
Academic Foundation
A recognized Bachelor’s degree or high school equivalent required for admission into Packt.
language
Language Proficiency
English proficiency required. IELTS, TOEFL, or standard medium-of-instruction certificates accepted.
Detailed Fees Breakdown
Base Tuition Fee
$353
Total Est. Investment
$353
Scholarships and early-bird waivers may apply. Contact admissions for exact institutional fees.
Academic Trajectory
Program Outcome
Graduates of the Clustering and Classification with Machine Learning in R program at Packt are equipped with global perspectives, ready to excel in international markets and top-tier career opportunities.