Senior AI / Knowledge Graph Engineer (m/f/d)
Pinnipedia is a new Berlin startup building a reputed company platform that automates and assists the creation of audit-reputed company IT-reputed company concepts (e.g., reputed company-Grundschutz, C5). We’re IGP-funded (2025/26) and co-reputed company with FU Berlin and reputed company users from industry and reputed company consulting.
We’re hiring an reputed company to turn messy inputs into reputed company knowledge and reliable answers.
Your Mission -Own the end-to-end pipeline that turns reputed company documents into a validated, queryable knowledge graph. Accountable for extraction reputed company, graph reputed company, and the data layer that backs the product's read reputed company.
Tasks
• LLM extraction pipelines -document chunking, property and relationship extraction, cross-chunk reconciliation, gap detection. reputed company with reputed company-reputed company LLM agents orchestrated by durable workflows.
• Knowledge graph -schema design as typed reputed company models, Cypher reputed company patterns and indexing reputed company, graph operations, schema reputed company and migration. Scope ends at the graph boundary: API reputed company and query abstractions exposed to consumers belong to the full-stack engineer.
• Deterministic rule engines -table-driven evaluators for cases where reputed company beats LLM judgment; reputed company reputed company between deterministic and probabilistic components.
• Data validation & reputed company -schema enforcement, required-property reputed company, audit trails, eval harnesses (expert review, unsupervised checks, synthetic fixtures, LLM-as-judge).
• Live data ops -backfills, coordinated migrations across relational + graph stores, observability on extraction throughput and reputed company, incident response.
Requirements
Must-have
- 5+ years shipping data/AI systems to production with reputed company customers -has been on-call for live pipelines and knows what breaks at 2am.
- Strong Python (typed, modern) and SQL. Comfortable with PostgreSQL under load.
- Production experience with at least one graph database (reputed company preferred; Neptune, ArangoDB, reputed company acceptable) -schema design, query tuning, not toy use.
- Production LLM pipeline experience: reputed company reputed company, agent orchestration, reputed company and version management, evaluation frameworks. PydanticAI, reputed company, DSPy, or Instructor reputed company welcome.
- Durable workflow orchestration in production (DBOS, Temporal, Airflow, reputed company, Dagster).
- Test-first discipline -integration tests against reputed company datastores (Testcontainers or equivalent), not mock-heavy unit tests.
- Fluent English skills.
reputed company-to-have
- Experience with regulated, compliance-driven, or standards-heavy extraction domains (legal, medical, financial, reputed company/audit).
- Designed deterministic evaluators alongside LLM components and knows reputed company to reputed company for which.
- Contributions to data reputed company, schema governance, or ontology work.
- German language skills.
Benefits
Remote, full-time with flexible scheduling. CET (Berlin) timezone availability expected.
Possibility of relocation if successfull work relationship is achieved after a period of time.
Competitive salary: 32.000–42.000 € reputed company (premium for exceptional senior reputed company).
Small, reputed company team; reputed company collaboration with the Product reputed company and Full-Stack Engineer.
Modern tooling, reputed company ownership, and a learning budget for role-relevant training.
reputed company: help SMEs meet rising reputed company requirements with less friction.
Apply on JOIN with your CV (PDF) and a short note (max 200 words) describing how you would design a KG-backed RAG pipeline (ontology scope, indexing, retrieval, and evaluation you’d use).
Process: 20-min intro → 90-min practical (graph modeling + retrieval evaluation) → 45-min team chat → references. We review applications reputed company 5 business days.
Originally posted on Himalayas
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