Python for Machine Learning

Instructor‑Led: $1,195 | Duration: 2 Days

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Select a Learning Method Below

Start Date End Date CLASS TIMES (EST) DELIVERY/LOCATION Status Price Enroll Now
2/19/2026 2/20/2026
9:00AM - 5:00PM
star GTR

Guaranteed-to-Run

$1,195
5/7/2026 5/8/2026
9:00AM - 5:00PM
star GTR

Guaranteed-to-Run

$1,195
START DATE : 2/19/2026
END DATE : 2/20/2026
CLASS TIMES (EST) : 9:00AM - 5:00PM
DELIVERY/LOCATION :
STATUS :
star GTR

Guaranteed-to-Run

PRICE : $1,195
START DATE : 5/7/2026
END DATE : 5/8/2026
CLASS TIMES (EST) : 9:00AM - 5:00PM
DELIVERY/LOCATION :
STATUS :
star GTR

Guaranteed-to-Run

PRICE : $1,195

Course Highlights

LEVEL: 
  • Advanced
TOPICS & JOB ROLES: 
BRANDS/TECHNOLOGIES: 

Python for Machine Learning Course Outline

Unlock the power of machine learning and transform your Python skills into real-world impact. With over 91% of businesses investing in AI initiatives, the ability to apply machine learning is one of the most in-demand tech skills today. This hands-on course will guide you through building powerful algorithms using Python?s Scikit-learn library?equipping you to predict classifications, continuous values, and more.

Whether you’re refining your models with Lasso and Ridge regression or deploying interactive APIs, this course gives you the tools and techniques to apply machine learning confidently in your day-to-day work.

Who Should Attend this Course?

This course is ideal for experienced Python developers who are ready to expand their skillset into machine learning. If you want to build a modern portfolio of machine learning projects, understand both supervised and unsupervised learning algorithms, and learn practical deployment methods, this course is for you.

PREREQUISITES

To be successful in this course, learners should have the following: Intermediate Python skills and knowledge

  • Level of knowledge and experience gained from Python for Data Science
  • Python
  • Jupyter notebooks
  • Numpy
  • Pandas
  • Matplotlib
  • Machine Learning concepts
  • Supervised vs Unsupervised Learning
  • Types of Machine Learning ? Classification vs Regression
  • Evaluation
  • Machine Learning Methods ? All in Theory and Practice
  • Linear Regression
  • Logistic Regression
  • K Nearest Neighbors
  • Support Vector Machine
  • Decision Trees
  • Unsupervised Learning Methods
  • Feature Engineering and Data Preparation

Related Job Roles

This course builds skills and demonstrates qualifications for the job roles and average base salaries below. 

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