Machine Learning Data Engineer, Replica Pipelines

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Summary

Location

Karlsruhe, Germany

Work

Full-time

About this Job

Parallel Domain is building the world’s most advanced simulation and digital twin platform for autonomy, robotics, and computer vision. Our Replica product creates large-scale, photorealistic digital twins of real-world environments used for testing, validation, and development of autonomous systems.

About the role:

  • We are hiring a Machine Learning Data Engineer responsible for building and scaling the data pipelines that support Replica and ML model development. You will ensure that data flows efficiently from raw customer inputs through validated, structured formats suitable for training, evaluation, and production systems.

What you'll do:

  • Own data ingestion: Build reliable pipelines to normalize and validate customer and synthetic data.
  • Define data standards: Create schemas, validation checks, and quality metrics for Replica datasets.
  • Build curation tooling: Implement tools for dataset filtering, versioning, and annotation support.
  • Enable ML workflows: Generate high-quality data feeds for training and evaluation across ML models.

What you’ll bring:

  • Data engineering experience: Proven experience building scalable data pipelines and tooling.
  • ML-aware engineering: Understanding of how data is used in model training and evaluation.
  • 3D Foundations: Practical experience with 3D concepts, geometry, and the linear algebra principles underpinning computer vision (e.g., projections, transformations)
  • Technical skills: Strong Python proficiency and comfort with large datasets.
  • Collaborative mindset: Experience working closely with ML engineers on data needs.

What will help you stand out:

  • Advanced degree: MS or PhD in ML, computer vision, robotics, or related field.
  • Cloud/infra experience: Familiarity with cloud storage and distributed processing frameworks.
  • Robotics data knowledge: Experience handling camera, lidar, or radar data
  • Visualization tools experience: Familiarity with data visualization systems like Foxglove, Rerun, or Voxel51
  • MLOps tooling exposure: Experience with dataset versioning, preprocessing automation, or training pipeline orchestration.

What we offer:

  • Competitive compensation: Salary dependent on your skills, qualifications, experience, and location.
  • Impactful work: The chance to contribute to the advancement of autonomous systems and AI.
  • Collaborative culture: A dynamic and supportive work environment where your ideas are valued.
  • Professional growth: Opportunities to learn and develop your skills in a cutting-edge field.

If you're passionate about machine learning, 3D reconstruction, generative AI, and the future of autonomous systems, we'd love to hear from you. Apply today and help us revolutionize the world of AI!

This position is available in Vancouver, BC and Karlsruhe DE.

About the Company

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Parallel Domain

Privately Held
Transportation & Autonomous VehiclesRobotics Software & AIAerospace & Defense

We are on a mission to bridge the gap between simulation and the real world, ensuring autonomous systems perform flawlessly when it counts most. As the trusted first line of defense for innovators in autonomous driving, drone delivery, eVTOL, robotics, and beyond, we empower industry leaders to rigorously test and validate their systems at scale. Our high-fidelity, fully controllable, software-in-the-loop sensor simulation API provides unparalleled realism, accuracy, and confidence. In autonomy, there's simply no margin for error.

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