This course teaches learners to design, operate, secure, and evaluate vector-based retrieval systems used in semantic search and RAG applications. Learners work with embeddings, vector schemas, index design, refresh strategies, consistency checks, evaluation signals, retrieval observability, and permissions-aware access controls. The course focuses on practical system design and tradeoffs rather than low-level algorithm implementation.

Vector Databases and Retrieval Data Engineering

Vector Databases and Retrieval Data Engineering
This course is part of IBM AI-Native Data Engineering Professional Certificate


Instructors: Antonio Cangiano
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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 how embeddings and vector retrieval differ from keyword search.
2.Design metadata-rich vector schemas and embedding pipelines.
3.Evaluate retrieval systems using recall, latency, and drift signals.
4. Apply security and governance controls to vector retrieval systems.
Skills you'll gain
- Metadata Management
- Software Documentation
- Database Architecture and Administration
- Database Development
- Data Architecture
- Concept Of Operations
- Large Language Modeling
- Data Integrity
- Embeddings
- Record Keeping
- Retrieval-Augmented Generation
- Database Design
- Data Maintenance
- Document Management
- Model Evaluation
- Data Engineering
- Data Store
Tools you'll learn
Details to know

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Recently updated!
July 2026
Assessments
32 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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