Python is a core skill in machine learning, and this course equips you with the tools to apply it effectively. You’ll learn key ML concepts, build models with scikit-learn, and gain hands-on experience using Jupyter Notebooks.

Machine Learning with Python

Machine Learning with Python
This course is part of multiple programs.



Instructors: Joseph Santarcangelo +2 more
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What you'll learn
Explain key concepts, tools, and roles involved in machine learning, including supervised and unsupervised learning techniques.
Apply core machine learning algorithms such as regression, classification, clustering, and dimensionality reduction using Python and scikit-learn.
Evaluate model performance using appropriate metrics, validation strategies, and optimization techniques.
Build and assess end-to-end machine learning solutions on real-world datasets through hands-on labs, projects, and practical evaluations.
Skills you'll gain
- Category: Machine Learning Algorithms
- Category: Predictive Modeling
- Category: Decision Tree Learning
- Category: Machine Learning
- Category: Model Evaluation
- Category: Statistical Machine Learning
- Category: Predictive Analytics
- Category: Regression Analysis
- Category: Unsupervised Learning
- Category: Model Optimization
- Category: Logistic Regression
- Category: Dimensionality Reduction
- Category: Supervised Learning
- Category: Machine Learning Methods
- Category: Model Training
- Category: Applied Machine Learning
Tools you'll learn
- Category: Scikit Learn (Machine Learning Library)
- Category: Python Programming
- Category: Classification Algorithms
Details to know

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17 assignments
Build your subject-matter expertise
- Learn new concepts from industry experts
- Gain a foundational understanding of a subject or tool
- Develop job-relevant skills with hands-on projects
- Earn a shareable career certificate from IBM

There are 6 modules in this course
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Reviewed on Sep 24, 2020
Excellent course for beginners to data science field. Would have been better if the final project also included flavor of other ML methods such as Regression, Clustering or Recommender Systems.
Reviewed on Dec 31, 2019
could be split in two courses to be given enough focus. it was very condensed and needed more time and explanation in each section. The instructor was very good but more details would have been nice
Reviewed on Oct 8, 2020
I'm extremely excited with what I have learnt so far. As a newbie in Machine Learning, the exposure gained will serve as the much needed foundation to delve into its application to real life problems.
