Company
Auxilius.ai
Location
Munich, Germany
Employment type
Full-time
Primary category
IT Operations
Posted date
20 Apr 2026
Valid through
19 Jun 2026
You'll join an early-stage, AI-native startup with a product that has already proven market fit. We build cutting-edge AI solutions for Governance, Risk and Compliance (GRC) for enterprises around the world.
Our customers are auditors, risk managers, and compliance teams, which means evaluation rigor, auditability, and EU AI Act readiness aren't afterthoughts for us. They're product requirements.
As our AI Engineer for LLMOps & Evaluation, you'll own the LLMOps pipeline end-to-end and work directly alongside our founding team.
Own the LLMOps pipeline: Evaluate infrastructure, prompt optimization loop, and the production integration that turns experiments into reliable customer-facing features
Design evaluation strategy per output type: Decide when to use deterministic evals (exact match, schema validation, embeddings) vs. LLM-as-judge, and build the rubrics, test datasets, and human-review loops that make the system trustworthy
Drive prompt engineering and optimization across all LLM operations in the product: Moving from hand-tuned prompts to a measurable, iterative process
Pick the right tool for each problem: Some things are LLM problems, some are embedding + classical NLP problems, some are deterministic logic
Run the production side of AI features: Observability (Langfuse /LangSmith / similar), cost and latency engineering, incident response when an LLM feature degrades
Build human-in-the-loop workflows: Review queues, feedback ingestion, labeling; so production signal feeds back into evals and prompt iteration
Mentor our AI & Analytics Intern and contribute to how we build the AI team over time
3+ years of hands-on experience building and shipping ML/AI systems in production (we care more about what you've shipped than years on a CV)
Have shipped an LLM evaluation or prompt optimization pipeline, not just used LLMs in a project, but owned the loop
Strong hands-on experience with LLM-as-judge, including its variance problems and concrete techniques for controlling them
Solid foundation in classical NLP and ML ops: Embeddings, semantic similarity, entity matching, classification, fuzzy matching
Informed opinions on deterministic vs. LLM-based evals, from experience
Production judgment: You've owned cost and latency tradeoffs, observability, and incident response for an LLM-powered feature. You're familiar with prompt regression and have strategies for managing it
Strong Python
Excellent English communication, written and verbal: We discuss nuanced technical tradeoffs daily with the founding team and customers
Comfort with ambiguity: You can run experiments on real data, build intuition for this domain, and know when to stop iterating
Nice to have
Hands-on experience with LLM observability and eval tooling (Langfuse, LangSmith, Phoenix/Arize, Helicone, Braintrust, W&B)
Experience with DSPy or similar prompt optimization frameworks, and opinions on where they do and don't work
Experience with Azure OpenAI in EU regions, or with EU-sovereign providers (Mistral, Aleph Alpha)
Exposure to guardrails, content safety, or AI governance
Exposure to enterprise software, ideally GRC, compliance, audit, or regulated industries
Familiarity with Java/Spring Boot or Kubernetes on Azure; enough to integrate cleanly
German
Hands-on ownership of a real AI product used by enterprise customers
Work directly alongside the founding team from day one
Hybrid work model: Munich North, minimum one day per week in the office, otherwise flexible (open to strong candidates elsewhere in the EU for the right fit); onboarding will take in-office
A steep learning curve at the intersection of LLM engineering, enterprise GRC, and startup operations
The chance to shape the AI team as we grow
Auxilius .ai is building AI-powered GRC solutions for enterprises. We're early-stage, fast-growing, and backed by real customers. Our tech stack includes Java & Spring Boot, Angular, Kubernetes on Azure, and OpenAI & Anthropic LLMs.
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