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Track and Evaluate ML Model Experiments

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Track and Evaluate ML Model Experiments

LearningMate

Instructor: LearningMate

Included with Coursera Plus

Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

2 hours to complete
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

2 hours to complete
Flexible schedule
Learn at your own pace

What you'll learn

  • Track, version, and evaluate ML experiments using DVC and W&B to reliably select and prepare models for production deployment.

Details to know

Shareable certificate

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Recently updated!

December 2025

Assessments

6 assignments¹

AI Graded see disclaimer
Taught in English

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Build your subject-matter expertise

This course is part of the LLM Optimization & Evaluation Specialization
When you enroll in this course, you'll also be enrolled in this Specialization.
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  • Gain a foundational understanding of a subject or tool
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There are 3 modules in this course

This module tackles the foundational challenge of managing datasets and models. Learners will discover why ad-hoc file naming fails at scale and will learn to use Data Version Control (DVC) to create a single source of truth. They will get hands-on experience initializing DVC in a Git repository, tracking data artifacts, and configuring remote storage to ensure experiments are fully reproducible.

What's included

2 videos1 reading1 assignment1 ungraded lab

With data versioning in place, this module focuses on tracking the experiments themselves. Learners will move beyond messy spreadsheets and learn to use Weights & Biases (W&B) to systematically log hyperparameters, metrics, and artifacts. They will instrument a real ML training script to create a rich, interactive, and collaborative record of their experimentation process.

What's included

2 videos1 reading2 assignments

This final module focuses on the crucial decision-making process. Learners will use the data they have tracked to make an informed, evidence-based choice about which model is best for production. They will learn to balance predictive performance with operational constraints and to document their decision in a way that ensures auditability and stakeholder trust.

What's included

1 video1 reading3 assignments

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Instructor

LearningMate
Coursera
62 Courses653 learners

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Frequently asked questions

¹ Some assignments in this course are AI-graded. For these assignments, your data will be used in accordance with Coursera's Privacy Notice.