Coursera

Vector DB Foundations, Embeddings & Search Algorithms Specialization

Coursera

Vector DB Foundations, Embeddings & Search Algorithms Specialization

Master Vector DB, Embeddings & Search.

Build embeddings, tune HNSW & ANN, measure similarity & unlock hybrid, RAG & multimodal search.

LearningMate

Instructor: LearningMate

Included with Coursera Plus

Get in-depth knowledge of a subject
Intermediate level

Recommended experience

4 weeks to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
Get in-depth knowledge of a subject
Intermediate level

Recommended experience

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

What you'll learn

  • Build and evaluate embedding pipelines for text and images, and process large datasets using production‑style Python scripts.

  • Tune HNSW and ANN search algorithms, select similarity metrics and optimize hybrid search to balance recall and latency.

  • Explain vector databases and RAG architectures, build retrieval‑augmented and multimodal search applications and justify database choices.

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Taught in English
Recently updated!

March 2026

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Specialization - 8 course series

Grasp Vector DB Basics

Grasp Vector DB Basics

Course 1, 2 hours

What you'll learn

  • Explain vector databases, analyze use cases to select the best DB solution, and justify your architectural choice to stakeholders.

Skills you'll gain

Category: Business Analysis
Category: Database Design
Category: Persuasive Communication
Category: Embeddings
Category: NoSQL
Category: Vector Databases
Category: Decision Making
Category: Stakeholder Management
Category: Databases
Category: System Design and Implementation
Category: Database Theory
Category: Communication
Category: Relational Databases
Category: Semantic Web
Category: Stakeholder Communications
Category: Database Management Systems
Embed Everything

Embed Everything

Course 2, 3 hours

What you'll learn

  • Learners will build and evaluate a complete embedding pipeline by converting raw data into vectors and using clustering to verify semantic quality.

Skills you'll gain

Category: Embeddings
Category: Data Pipelines
Category: Applied Machine Learning
Category: Python Programming
Category: AI Workflows
Category: Dimensionality Reduction
Category: Scikit Learn (Machine Learning Library)
Category: NumPy
Category: Transfer Learning
Category: Model Evaluation
Category: Unstructured Data
Category: Machine Learning
Category: Scientific Visualization
Category: Machine Learning Methods
Category: Scripting
Category: Natural Language Processing
Tune HNSW

Tune HNSW

Course 3, 3 hours

What you'll learn

  • Build and tune HNSW index parameters to balance recall and query speed for specific use cases.

Skills you'll gain

Category: Plot (Graphics)
Category: Model Optimization
Category: Simulations
Understand RAG Basics

Understand RAG Basics

Course 4, 2 hours

What you'll learn

  • Describe RAG architecture and build a basic RAG pipeline to inject retrieved context into an LLM, answering queries with external knowledge.

Skills you'll gain

Category: Retrieval-Augmented Generation
Category: LLM Application
Category: Applied Machine Learning
Category: AI Integrations
Category: Data Flow Diagrams (DFDs)
Category: Vector Databases
Category: Diagram Design
Category: Large Language Modeling
Category: Prompt Engineering
Category: Generative AI
Category: Embeddings
Category: Data Pipelines
Blend Hybrid Search

Blend Hybrid Search

Course 5, 2 hours

What you'll learn

  • Implement a hybrid search system, tuning keyword and vector scores to optimize search relevance using the NDCG metric.

Skills you'll gain

Category: Model Optimization
Category: Semantic Web
Category: Embeddings
Category: Application Programming Interface (API)
Category: Vector Databases
Measure Vector Similarity

Measure Vector Similarity

Course 6, 2 hours

What you'll learn

  • Implement and compare vector similarity metrics to evaluate their impact on information retrieval and ranking tasks.

Skills you'll gain

Category: Python Programming
Category: Data-Driven Decision-Making
Category: Classification Algorithms
Category: Machine Learning
Category: Machine Learning Algorithms
Category: Model Evaluation
Category: Vector Databases
Category: Performance Testing
Category: Applied Machine Learning
Category: Numerical Analysis
Category: NumPy
Category: Linear Algebra
Master ANN Search

Master ANN Search

Course 7, 2 hours

What you'll learn

  • Learners will build, evaluate, and optimize ANN search indexes, balancing accuracy and speed for large-scale vector similarity applications.

Skills you'll gain

Category: Retrieval-Augmented Generation
Category: Performance Tuning
Category: Embeddings
Category: Vector Databases
Category: Performance Testing
Category: Responsible AI
Category: Model Evaluation
Category: Data Ethics
Category: Model Optimization
Unlock Multimodal Search

Unlock Multimodal Search

Course 8, 1 hour

What you'll learn

  • Configure Weaviate to store and query linked image and text embeddings and analyze the precision gains of multimodal search.

Skills you'll gain

Category: Vector Databases
Category: Model Evaluation
Category: Data Import/Export
Category: Database Design
Category: Docker (Software)
Category: Containerization
Category: Data Modeling
Category: Verification And Validation
Category: Retrieval-Augmented Generation
Category: Applied Machine Learning
Category: Query Languages
Category: Embeddings
Category: Image Analysis

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Instructor

LearningMate
275 Courses23,250 learners

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Coursera

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