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Thank you for watching the replay! 🙌 In this session, we explained RAG (Retrieval-Augmented Generation) in the simplest, most beginner-friendly way — no prior AI knowledge required. If you’ve ever wondered: 🔹 How does AI find the right information? 🔹 Why do AI models sometimes hallucinate or give wrong answers? 🔹 How does RAG make AI more accurate and reliable? 🔹 Where is RAG used in real-world applications? …this session answers all of that with simple examples, clear diagrams, and real-life scenarios. 📌 What you’ll learn in this video ✔ What RAG really means (in plain English) ✔ Why LLMs guess and hallucinate ✔ Before vs After RAG architecture ✔ Step-by-step RAG workflow ✔ Real-world use cases of RAG ✔ How RAG helps AI stop guessing and start reading This session is ideal for: Beginners in AI Students & working professionals Anyone curious about how modern AI systems work 🧠 Key takeaway RAG makes AI read real information before answering — reducing hallucinations and improving accuracy. 👍 If this helped you Like the video Share it with someone learning AI Subscribe for more beginner-friendly AI content 💬 Drop your questions or feedback in the comments — I’d love to hear from you!