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Building AI systems from research to production

Focused on AI agents, LLM applications, retrieval systems, document intelligence, and scalable ML infrastructure.

I enjoy building systems that go beyond simple LLM wrappers — multi-step agents, tool execution, structured extraction, retrieval, evaluation, guardrails, and reliable backend infrastructure.

Current interests

  • 🤖 AI Agents — orchestration, tools, planning, memory, human-in-the-loop workflows
  • 🔎 RAG & Deep Research — heterogeneous materials, semantic retrieval, context construction
  • 📄 Document Intelligence — parsing, extraction, normalization, validation, cross-document reasoning
  • 🧠 LLM / Foundation Models — inference, evaluation, multilingual & multimodal systems
  • ⚙️ AI Infrastructure — model serving, async pipelines, observability, distributed workloads
  • 🔗 Distributed Systems — storage, state management, blockchain infrastructure

Open source & projects

Most repositories here explore different parts of the same problem:

how to build autonomous AI systems that can reliably understand information, reason over it, use tools, and execute real work.

Recent work includes:

  • agentic research and knowledge systems
  • LLM routing, inference, and evaluation
  • coding / computer-use agents
  • multimodal agent evaluation
  • sandboxed tool execution
  • retrieval and document-processing infrastructure
  • distributed storage and blockchain systems

Tech

Python · Go · Rust · TypeScript · PyTorch · FastAPI PostgreSQL · pgvector · Redis · Docker · Kubernetes · AWS


Research → systems → production.

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