This course focuses on designing governed, scalable lakehouse architectures that support AI-native data platforms. Learners translate AI workload requirements into data product SLOs, compare open table formats, design ingestion and replay strategies, manage schema evolution, support reproducibility, and define observability signals for freshness, latency, throughput, and cost. The course emphasizes architecture and operational patterns rather than vendor-specific platform administration.

Lakehouse Architecture for AI-Native Data Platforms

Lakehouse Architecture for AI-Native Data Platforms
This course is part of IBM AI-Native Data Engineering Professional Certificate


Instructors: Antonio Cangiano
Included with Learn more
Gain insight into a topic and learn the fundamentals.
Intermediate level
Recommended experience
2 weeks to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
What you'll learn
1.Explain when lakehouse architecture fits AI-native data platforms.
2.Compare open table formats, replay patterns, and schema evolution strategies
3.Design governed ingestion, observability, and lifecycle workflows for AI data systems.
4.Apply data contracts, lineage, access control, and CI gates to lakehouse operations.
Skills you'll gain
- Database Architecture and Administration
- Data Infrastructure
- Data Governance
- Requirements Analysis
- Data Pipelines
- Data Integrity
- Data Warehousing
- Site Reliability Engineering
- AI Integrations
- Systems Architecture
- Decision Intelligence
- Dataflow
- Solution Architecture
- Data Architecture
- Responsible AI
- Data Engineering
- Enterprise Architecture
Tools you'll learn
Details to know

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Recently updated!
July 2026
Assessments
31 assignments
Taught in English
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This course is part of the IBM AI-Native Data Engineering Professional Certificate
When you enroll in this course, you'll also be enrolled in this Professional Certificate.
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There are 9 modules in this course
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