This role has closed. autonomous-teaming has taken the posting down.
hirly last saw it live on 20 September 2026. See similar open roles below, or browse all Data Engineer jobs in Munich.
autonomous-teaming
ML Data Engineer (m/f/d) - Sensor Data & Pipelines
Munich (DEU)
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hirly's read of this role
- Role family
- Data & ML
- Seniority
- Mid level
- Work mode
- On-site / unstated
- First seen by hirly
- 20 Sept 2026
Derived automatically from the posting.
the posting
- 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
- Strong command of object detection pipelines (Detectron2, MMDetection, COCO format, bounding-box standards)
- Demonstrated experience designing active learning, uncertainty sampling, or semi-supervised dataset workflows
- Deep familiarity with data annotation platforms (CVAT, Label Studio) and building automated QA/consistency checks
- Strong grasp of evaluation metrics for object detection (IoU, mAP, precision-recall curves, class-wise metrics)
- Comfortable owning decisions around databases (SQL/NoSQL), file systems, and large-scale image, video, and sensor dataset management
- Track record of working cross-functionally and influencing perception, deployment, robotics, and data infrastructure teams
- Fluent in English; German and/or French are a plus
- Nice to have
- Experience with cloud storage and MLOps tools (AWS S3, MinIO, ClearML, MLFlow, Weights & Biases).
- Familiarity with ROS / robotics data formats (bag files, TF trees, sensor_msgs), Docker, or embedded ML workflows.
- Prior work with robotics, drones, or multi-sensor perception systems, including IR, LiDAR, radar, or audio datasets.
- What else
- Outside-the-box creativity with a blend of conceptual and systematic design thinking.
- High intrinsic motivation, attention to detail, and strong problem-solving mindset.
- Structured, methodical, and reliable execution, even under uncertainty.
- Humble, collaborative, and mission-driven — values collective success over ego.
- High ethical standards and disciplined work ethic.
- Extra-curricular achievements, leadership, or unique projects are a plus.
- NATO-aligned nationality or close ally citizenship is required.
Why us? Join us to shape the future of AI-driven defense!
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