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Data & AI Magazine · Barcelona, Catalonia, Spain

AGENTIC AI ENGINEER (LIFE SCIENCES & KNOWLEDGE GRAPHS) BARCELONA, CATALONIA, SPAIN (REMOTE)

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Want to build AI agents that actually give trustworthy, explainable answers not confident guesses? This is a role for a GenAI engineer who knows that the way you get there is by grounding LLMs in real, governed enterprise knowledge.

You’ll join a specialist team at a global life-sciences organisation building a new generation of knowledge-graph-powered AI agents. Your focus is the tooling and the applications on top of the intelligence layer, not the underlying data.

What You Will Build

Picture an agent that answers a question like “which priority hospitals in the US have decreasing sales?” To do it, the agent reads the definitions of the business terms from a knowledge graph so it understands the question, then queries the data warehouse for the real figures, and composes a grounded, traceable answer.

That grounding is the whole point: it’s what cuts hallucination and makes every answer explainable. If building that kind of system sounds like your idea of a good problem, read on.

What You Will Do

- Design and build LLM-powered agents and retrieval solutions on top of enterprise knowledge and data

- Connect agents to enterprise systems through tool definitions and MCP-style connections

- Benchmark and evaluate models, then take solutions from prototype into production

- Build reusable frameworks and accelerators for agentic AI

- Define the testing, evaluation, monitoring and governance for what you ship

What You Will Bring (essential)

- Strong hands-on GenAI / LLM engineering – you’ve built real solutions with LLMs: agents, RAG, prompt and tool design, benchmarking, and shipping to production

- Hands-on experience with knowledge graphs and semantic web in applications – SPARQL, RDF and related standards

- Strong Python and modern API development

- Solid software engineering fundamentals — Git, CI/CD, testing, cloud-native architecture

- A clear communicator who works well with both technical and business stakeholders

4+ years of AI engineering experience is a starting point — we care far more about genuine depth building LLM-powered systems than years on paper.

Nice To Have

- MCP (very learnable if you know LLMs and Python)

- Vector databases, embeddings and semantic search

- Any graph or semantic tooling — Neo4j, Stardog, metaphactory, Snowflake and similar (current set up is standards-based and vendor-neutral, so the standards matter more than any one product)

- Life sciences, pharma or other regulated-industry experience

The Details

- Contract role

- EU-remote based

- Occasional on-site workshops in Germany (roughly every couple of months)

- Start: 1st October

- Runs to year-end initially, with strong potential to extend into a full project in the new year

Apply Now

To explore this opportunity further and learn more, click the enquire today button.

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