Edureka

Getting Started with Automated Machine Learning (AutoML)

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Edureka

Getting Started with Automated Machine Learning (AutoML)

Edureka

Instructor: Edureka

Included with Coursera Plus

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

Recommended experience

1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
Beginner level

Recommended experience

1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Explain why AutoML emerged and how it reduces scaling limits in traditional ML workflows

  • Control and interpret model search using constraints, ensembles, and leaderboard signals

  • Apply structured hyperparameter optimization using metric-based comparison and search controls

  • Deploy H2O AutoML models by selecting and exporting MOJO or POJO artifacts for production

Details to know

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Assessments

15 assignments¹

AI Graded see disclaimer
Taught in English

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There are 4 modules in this course

Develop a clear mental model of AutoML and its emergence from the scaling limits of manual ML workflows. You will define AutoML as a structured experimentation system and understand H2O AutoML’s execution architecture. Finally, you will run and interpret your first baseline AutoML workflow.

What's included

14 videos6 readings5 assignments

Explore the operational core of AutoML: data readiness, model search, and metric-driven evaluation. You will assess data requirements, recognize automation limits, and interpret leaderboards and feature importance as decision evidence. You will frame model selection as a search problem, evaluate ensemble performance, and use metrics as optimization signals.

What's included

10 videos5 readings4 assignments

Shift to production-ready AutoML systems. You will conduct structured hyperparameter searches, compare configurations using metrics, and apply controls such as early stopping and checkpointing for reproducible tuning. You will then deploy models via MOJO/POJO, implement scalable scoring patterns, and execute the lifecycle in H2O Flow for inspection.

What's included

13 videos4 readings4 assignments

Integrate the complete AutoML lifecycle through an end-to-end workflow design and final assessment. You will translate course concepts into a coherent solution covering data preparation, model selection, evaluation strategy, and operational considerations. You will justify decisions using metric evidence, trade-off analysis, and established best practices.

What's included

1 video2 assignments1 ungraded lab

Instructor

Edureka
Edureka
152 Courses 141,395 learners

Offered by

Edureka

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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.