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Artificial-Intelligence-Projects

This is where I’ve gathered all my implementations for machine learning in Python.

LlamaIndex-implementations:

  • RAG (Retrieval-Augmented Generation): Enhanced LLM responses with real-time, accurate external information.
  • AI Agents: Automated data tasks and develop advanced apps using LlamaIndex agents.
  • Query and Chat Engines: Created stateful systems that maintain context for more engaging conversations.
  • Streamlit Interfaces: Transformed Python scripts into interactive web apps with minimal code.

Langchain-implementations:

  • Prompting Techniques: Utilized few-shot prompting, Chain of Thought, and ReAct prompting to guide model responses.
  • Chat & Open Source Models: Explored conversational agents and community-driven model alternatives.
  • Prompt Engineering: Involves crafting effective Prompts, using PromptTemplates (e.g., langchainub), and output parsers like Pydantic.
  • Chaining Operations: Leveraged chains (e.g., create_retrieval_chain, create_stuff_documents_chain) to sequentially process tasks.
  • Agents & Customization: Developed various agents (custom, Python, CSV, Agent Routers) for specialized data tasks.
  • Tool Integration: Employed OpenAI Functions and tool calling within broader toolkits.
  • Memory & Vectorstores: Integrated memory modules and vector stores (Pinecone, FAISS) for context management and data retrieval.
  • RAG (Retrieval Augmentation Generation): Merged real-time external knowledge with LLM responses.
  • Document Handling: Used DocumentLoaders and TextSplitters to process and manage text data.
  • UI Development: Applied Streamlit for quick creation of interactive web interfaces.

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This is where I’ve gathered all my implementations for machine learning in Python.

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