ML Data Engineer (m/f/d) - Sensor Data & Pipelines

autonomous-teaming - Munich (DEU) - Global - Construction & Infrastructure


What we offer

  • Work in an international, agile team creating the future of autonomous systems
  • Grow your career in a expanding and ambitious engineering team
  • Build innovative products using state-of-the-art technologies in AI, robotics, and autonomy 
  • Benefit from a steep learning curve and continuous development
  • Enjoy team events and a strong, collaborative culture


Your mission

This role owns the data foundation of our perception systems end-to-end — the layer that directly determines model performance in real-world environments. You'll set the technical direction for how we collect, curate, and continuously improve the datasets behind object detection, working as a senior technical partner to ML, perception, and robotics teams — turning raw, messy sensor data into reliable, production-grade systems at scale.

You will take full ownership of the ML data lifecycle — from architecture decisions on ingestion and pipelines, through labeling strategy and QA, to driving continuous, metrics-informed dataset improvement — and will be expected to bring judgment and prior experience to how this is done, not just execute a defined process.



What you'll do:

  • Architect and own scalable pipelines for ingesting, organizing, and preprocessing large volumes of time-series camera and multi-sensor data (RGB, IR, thermal, depth, IMU)
  • Drive the strategy behind our object detection datasets, ensuring quality, diversity, and statistical representativeness at scale
  • Design and operate active learning loops that connect model performance directly to data selection and improvement priorities
  • Own labeling workflows end-to-end — tooling decisions, QA methodology, consistency standards, and coordination of annotation efforts
  • Partner closely with AI Engineers to diagnose model weaknesses, bias, and drift, and translate findings into concrete dataset strategy
  • Plan and lead data collection campaigns (field recordings, drone/video capture) to close gaps with high-value real-world data
  • Build internal tools and dashboards that give the org visibility into dataset quality, distribution, and performance gaps


Your profile

  • 5+ years of hands-on experience in Python and data processing frameworks (Pandas, NumPy, vectorized operations, multiprocessing)
  • Proven track record building and owning ETL/ELT pipelines for large-scale video and sensor datasets in production
  • Deep experience with data orchestration and lifecycle management for ML/computer vision workflows, including dataset versioning and reproducibility
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