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Data Engineer (Python)

Role overview

Qualifications

  • 3+ years data engineering experience with real pipeline delivery beyond ad-hoc scripts
  • Strong Python + SQL; comfortable building transformations, validation tooling, and pipeline glue code
  • Practical streaming/CDC fundamentals and Kafka ecosystem experience
  • Familiar with lakehouse/storage and query layers and how to make datasets usable

Responsibilities

  • Prototype ingestion and connector patterns using NiFi, Kafka, Kafka Connect/Streams, and CDC approaches
  • Design prototype-grade but adoptable schemas and data models with clear semantics
  • Build incremental lakehouse datasets and produce queryable outputs for realistic evaluation
  • Containerize and deploy prototypes on Kubernetes; deliver minimal runbooks/configs for adoption

About the company

Orcrist Technologies logo

Orcrist Technologies

Defense Technology

Orcrist Technologies offers pioneering AI and data analytics solutions in the private and public sectors, turning sensors into strategy. We are a Berlin-based data defense technology company building AI-powered software for real-time situational awareness and sensor fusion. Our mission is to give decision-makers the clarity they need—when it matters most. Designed for interoperability, speed, and modularity, Orcrist enables NATO and European partners to operate with information dominance in fast-moving, high-threat scenarios.

Company details

IndustryDefense Technology
Company size11 - 50

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Job description

Data Engineer (Python)

Company

Orcrist builds the Orcrist Intelligence Platform (OIP), a Kubernetes-based data intelligence system delivered as SaaS or self-hosted/on-prem (including air-gapped deployments). We run streaming and batch pipelines that power search, ML enrichment, and investigative workflows for mission-critical customers.

Role

Rapidly validate new data initiatives end-to-end—without sacrificing adoptability. On Innovation, you’ll prototype representative connectors and pipelines (batch + streaming), generate credible performance/operability readouts, and ship a handoff package that Foundation or a delivery team can productize.

What you'll do

  • Prototype ingestion and connector patterns (batch + streaming) using NiFi, Kafka, Kafka Connect/Streams, and CDC approaches.
  • Design “prototype-grade but adoptable” schemas and data models with clear semantics and evolution discipline.
  • Build incremental lakehouse datasets (Hudi/Iceberg/Delta patterns) and produce queryable outputs for realistic latency/throughput evaluation.
  • Bake in data quality and provenance mindset early (checks, metadata hooks, operability basics).
  • Containerize and deploy prototypes on Kubernetes; deliver minimal runbooks/configs that make adoption straightforward.
  • Produce adoption artifacts: schemas, reference implementations, technical design notes, and an integration backlog.

About You

  • 3+ years data engineering experience (level dependent) with real pipeline delivery beyond ad-hoc scripts.
  • Strong Python + SQL; comfortable building transformations, validation tooling, and pipeline glue code.
  • Practical streaming/CDC fundamentals (ordering, duplication, replay, idempotency) and Kafka ecosystem experience.
  • Familiar with lakehouse/storage and query layers (e.g., Hudi/Iceberg/Delta, Trino/Hive/Postgres) and how to make datasets usable.
  • Comfortable working in Kubernetes/container environments and documenting decisions clearly.
  • Eligible to work in Germany; EU/NATO citizenship preferred and export-control screening applies.

Nice‑to‑haves

  • Great Expectations or similar data quality tooling; metadata/lineage platforms (OpenMetadata/DataHub/Atlas).
  • Experience shipping in on-prem or air-gapped environments; governance/policy awareness for regulated customers.
  • German language (B1+) and/or experience with OSINT/GEOINT/multi-INT data shapes.

What We Offer

  • Modern data stack with real constraints: Kafka + NiFi + lakehouse + distributed SQL + Kubernetes.
  • Remote-first in Germany with regular Berlin prototyping sprints, 30 days vacation, equipment & learning budget.
  • High leverage: your prototypes become blueprints multiple teams reuse and productize.

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MR

Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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