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PySpark: Apply & Evaluate Predictive ML Models
This intermediate-level course empowers learners to apply, analyze, and evaluate machine learning models using Apache PySpark’s distributed computing framework. Designed for data professionals familiar with Python and basic ML concepts, the course explores real-world implementation of both regression and classification techniques, along with unsupervised clustering.
In Module 1, learners will construct linear and generalized regression models, apply ensemble regressors such as Random Forests, and evaluate predictive performance using metrics like RMSE and R-squared. The module concludes with an in-depth look at logistic regression for binary classification tasks.
Module 2 builds on these foundations to cover multi-class classification using multinomial logistic regression and decision trees. Learners will also evaluate ensemble models like Random Forests for robust classification, and explore K-Means clustering for unsupervised learning problems. Each concept is reinforced with guided PySpark code demonstrations, predictive workflows, and practical evaluations using large datasets.
By the end of the course, learners will be able to design, execute, and critically assess machine learning models in PySpark for scalable data analytics solutions.
Duration
6 Months
Institution
EDUCBA
Format
Online
Eligibility Criteria
school
Academic Foundation
A recognized Bachelor’s degree or high school equivalent required for admission into EDUCBA.
language
Language Proficiency
English proficiency required. IELTS, TOEFL, or standard medium-of-instruction certificates accepted.
Detailed Fees Breakdown
Base Tuition Fee
$258
Total Est. Investment
$258
Scholarships and early-bird waivers may apply. Contact admissions for exact institutional fees.
Academic Trajectory
Program Outcome
Graduates of the PySpark: Apply & Evaluate Predictive ML Models program at EDUCBA are equipped with global perspectives, ready to excel in international markets and top-tier career opportunities.