2-Build RAG Pipeline From Scratch-Data Ingestion to Vector DB Pipeline-Part 1 @krishnaik06
2-Build RAG Pipeline From Scratch-Data Ingestion to Vector DB Pipeline-Part 1  @krishnaik06
Uploaded September 2025 | Updated September 2026, 2 weeks ago
code: github.com/krishnaik06/RAG-Tutorials
In this video, I’ll guide you step by step to build a complete RAG (Retrieval-Augmented Generation) pipeline from scratch using LangChain. You’ll learn how to ingest raw data, preprocess it, create embeddings, and store them into a Vector Database, setting the foundation for powerful RAG applications.
🔑 What You’ll Learn:

What is RAG and why it’s important
Data ingestion & preprocessing for RAG
Embedding generation with LangChain
Storing & managing data in a Vector DB
How this pipeline powers real-world RAG applications

Timestamp:

00:00:00 Introduction
00:02:03 Data Ingestion Pipeline
00:08:13 Project Setup
00:11:02 Document Structure In Langchain
00:30:40 Building Embedding In RAG
00:37:22 Building Vector StoreDB
00:48:25 building RAG Retriever


⚡ Whether you’re a beginner or an experienced AI/ML practitioner, this video will give you a hands-on approach to building robust RAG pipelines.

👉 Don’t forget to like, share, and subscribe for more tutorials on Generative AI, LangChain, and RAG applications.
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Check our Complete Playlist
Agentic AI Langgraph Playlist: youtube.com/watch?v=vVGXPRjtAJE&list=PLZoTAELRMXVPFd7JdvB-rnTb_5V26NYNO
RAG Playlist: youtube.com/watch?v=fZM3oX4xEyg&list=PLZoTAELRMXVM8Pf4U67L4UuDRgV4TNX9D
MCP Playlist: youtube.com/watch?v=-UQ6OZywZ2I&list=PLZoTAELRMXVPC8r1xF68Gksi241DAtMsK
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2-Build RAG Pipeline From Scratch-Data Ingestion to Vector DB Pipeline-Part 1

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