Machine learning models rarely perform well without careful design, evaluation, and optimization. In this course, you'll learn how to build machine learning models and systematically improve their performance using proven engineering practices.

Building, Optimizing, and Validating Machine Learning Models
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Building, Optimizing, and Validating Machine Learning Models
This course is part of Machine Learning Made Easy for Software Engineers Specialization

Instructor: Professionals from the Industry
Included with
Recommended experience
What you'll learn
Build and train machine learning models by mapping real-world problems to appropriate ML tasks
Optimize and validate models using hyperparameter tuning, cross-validation, and feature analysis
Create automated ML pipelines that streamline feature engineering, training, and experimentation
Skills you'll gain
- Random Forest Algorithm
- Machine Learning
- Verification And Validation
- Machine Learning Methods
- Cost Management
- Statistical Modeling
- Model Evaluation
- Workflow Management
- Model Optimization
- Benchmarking
- Machine Learning Software
- Model Training
- Supervised Learning
- Applied Machine Learning
- Performance Analysis
- Predictive Modeling
- Resource Utilization
- Feature Engineering
- Statistical Machine Learning
Tools you'll learn
Details to know

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March 2026
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There are 9 modules in this course
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Felipe M.

Jennifer J.

Larry W.

Chaitanya A.
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