
Software Engineering Intern (AI Agents & Local LLMs) — Private Equity (Hamburg / Hybrid)
Job description
Software Engineering Intern (AI Agents & Local LLMs) — Private Equity (Hamburg / Hybrid)
Location: Hamburg (hybrid preferred)
Duration: 3–6 months (internship)
Start: ASAP / flexible
Compensation: Paid internship
Language: Fluent German and English needed
What you’ll build
You’ll help us design and ship AI agents that meaningfully accelerate a direct private equity investment team—from sourcing to diligence to portfolio support. The work is hands-on: you’ll build production-grade workflows (not demos) using Claude Code for agent development and a local LLM setup for privacy-sensitive tasks.
Core projects (examples)
- Claude Code agent workflows for:
- Deal/company research and structured briefs (with citations)
- Diligence support: extracting key facts from PDFs/data rooms and generating checklists & memos
- Portfolio ops assistants: drafting outreach, summarizing calls, creating action trackers
- Local LLM stack (privacy-first):
- Set up and evaluate a local model pipeline (e.g., quantized inference, GPU/CPU options)
- Implement RAG over internal documents with access controls
- Build evaluation harnesses for accuracy, hallucinations, and cost/latency tradeoffs
- Tooling & reliability
- Guardrails, structured outputs (JSON schemas), logging/tracing, basic tests
- Prompt/tool versioning and regression checks
Tech stack (what we use / want you to learn)
- Claude Code for agent development and orchestration
- Python (preferred) and/or TypeScript
- APIs + tooling for LLMs, structured tool calling, and RAG
- Vector search (pgvector / similar), Postgres, Docker
- Optional: local inference frameworks (e.g., vLLM / llama.cpp / Ollama-style runtimes), evaluation tooling
(You don’t need all of this on day 1—strong fundamentals + willingness to learn fast matters more.)
What we’re looking for
Must-have
- Strong CS fundamentals and practical coding ability (Python or TS)
- Evidence you ship: GitHub/projects, hackathon work, or a small demo you can walk us through
- Comfort working with messy real-world data (PDFs, tables, websites)
- Clear communication and ownership: you can drive a task from “idea → working prototype → improved v2”
- Deep Knowledge of Claude Code and the entire AI Agent development
Nice-to-have
- Prior experience with LLM agents, RAG, vector DBs, prompt/tool calling
- Interest in privacy/security and “local-first” ML systems
- Familiarity with evaluation: test sets, automated checks, error analysis
By the end of the internship you will have shipped:
- At least 4–5 agent workflows used by the investment team weekly
- A local LLM prototype integrated into one workflow (with measured quality/latency)
- An evaluation and monitoring loop so the system improves over time
Why this role is different
- You’ll build real internal systems used by decision-makers
- You’ll learn how to make agents reliable (not just impressive)
- You’ll work on privacy-first AI for a high-context domain (direct PE)
How to apply
Send:
- A short note: one project you built and what you owned
- An agent you have developed (even a weekend prototype)
Skills & technologies
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