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Free Data Science ★ 4.6 578 students 2 hours

Mastering Vector Databases & Embedding Models in 2025

Learn embeddings, similarity search, HNSW, IVF, semantic search, RAG, and recommender systems with hands-on examples.

Description


Embeddings and vector databases are the foundation of many modern AI applications — from semantic search to retrieval-augmented generation (RAG) and personalized recommendations. This course takes you from the core concepts to production-ready solutions, following a structured, project-based approach.

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In Section 1, you’ll build deep intuition about embeddings: what they are, how they are produced with Sentence Transformers, and how similarity metrics like cosine, Euclidean, and dot product work. You’ll then apply these concepts to build a mini search engine.

In Section 2, you’ll learn how to choose and customize embedding models. We’ll cover how embedding models are formed, how to evaluate them using the MTEB benchmark, and how to use multimodal embeddings. You’ll then explore fine-tuning with contrastive loss.

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In Section 3, we go under the hood of vector databases. You’ll learn the theory behind indexing methods like HNSW and IVF through clear visual explanations, followed by coding demos showing them in action.

In Section 4, we turn theory into practice. You’ll explore the vector database landscape, implement semantic search and dense retrieval, integrate embeddings into RAG pipelines, and build recommender systems using Pinecone — all with reproducible Python notebooks.

By the end of this course, you’ll have both the conceptual understanding and the hands-on skills to confidently build and deploy AI applications powered by embeddings and vector databases.


Total Students578
Duration2 hours
LanguageEnglish (US)
Number of lectures22
Number of quizzes0
Total Reviews7
Global Rating4.571429
Instructor NameTensor Teach

Course Insights (for Students)

Actionable, non-generic pointers before you enroll

👍

Student Satisfaction

86% positive recent sentiment

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Momentum

Steady interest

⏱️

Time & Value

  • Est. time: 2 hours
  • Practical value: 7/10

🧭

Roadmap Fit

  • Beginner → Advanced → Advanced

Key Takeaways for Learners

  • Benchmark
  • Hands On
  • Clear Explanation

Course Review Summary

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What learners praise

  • Hands On
  • Clear Explanation

Watch-outs

No consistent issues reported.

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Difficulty

Advanced

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Best suited for

Practitioners optimizing at scale

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