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Staff ML Engineer, Robotics

Diligent Robotics

Thélus

Sur place

EUR 70 000 - 90 000

Plein temps

Aujourd’hui
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Résumé du poste

A robotics technology firm in Hauts-de-France is looking for a Staff ML Engineer specializing in perception and robotics. The role involves developing machine learning models that enable robots to navigate human environments. Candidates should have a Master's or PhD and over 8 years of experience in applied machine learning, robotics perception, and should be skilled in using deep learning frameworks. This position offers the chance to shape future robot capabilities while working in a mission-driven team.

Qualifications

  • Minimum 8 years of experience in applied machine learning and robotics perception.
  • Strong debugging skills for diagnosing ML performance gaps.
  • Proven ability to take ML models from research prototype to production.

Responsabilités

  • Develop and deploy ML models for perception/navigation tasks.
  • Design sensor fusion and mapping pipelines.
  • Establish metrics and frameworks for validating ML models.
  • Mentor junior ML engineers and establish ML best practices.

Connaissances

Applied machine learning
Computer vision
Robotics perception
Deep learning frameworks (PyTorch, TensorFlow, JAX)
Sensor modalities (RGB/depth cameras, LIDAR)
Real-time ML tasks (detection, tracking)
Software engineering (Python, C++)

Formation

Master’s or PhD in Computer Science, Robotics, Machine Learning

Outils

Jetson
TPU
ARM-based platforms
Description du poste

What we’re doing isn’t easy, but nothing worth doing ever is.

We envision a future powered by robots that work seamlessly with human teams. We build artificial intelligence that enables service robots to collaborate with people and adapt to dynamic human environments. Join our mission-driven, venture-backed team as we build out current and future generations of humanoid robots.

As a Staff ML Engineer, Perception / Robotics, you will develop, deploy, and optimize machine learning models that enable robots to understand and navigate complex human environments. You will lead the design of ML systems, from sensor fusion to real-time inference, ensuring robustness in safety-critical, real-world deployments.

Responsibilities
  • Develop and deploy ML models for perception/navigation tasks such as object detection, semantic segmentation, tracking, scene understanding, localization, and path prediction.
  • Design and implement sensor fusion and mapping pipelines combining vision, depth, LIDAR, IMU, and other signals for robust perception and navigation in dynamic spaces.
  • Build real-time ML inference pipelines optimized for robotic hardware and embedded compute.
  • Setup data collection, labeling strategies, dataset curation, and synthetic data augmentation for training and evaluation.
  • Establish metrics, benchmarks, and test frameworks to validate ML models in both simulation and real-world environments.
  • Collaborate with robotics software engineers to integrate perception and navigation intelligence into autonomy stacks.
  • Work with operations to analyze field data, diagnose performance gaps, and iterate on model improvements.
  • Contribute to long-term ML and perception and navigation architecture decisions, influencing the roadmap for future robots.
  • Mentor junior ML engineers and contribute to building strong applied ML best practices within the team.
Skills and Experience
  • Master’s or PhD in Computer Science, Robotics, Machine Learning, or related field.
  • 8+ years of experience in applied machine learning, computer vision, or robotics perception.
  • Strong background in deep learning frameworks (PyTorch, TensorFlow, JAX).
  • Hands‑on experience with real‑time perception/navigation tasks (detection, tracking, segmentation, path planning).
  • Expertise in one or more sensor modalities: RGB/depth cameras, LIDAR, radar, or multimodal fusion.
  • Experience deploying ML models on edge/embedded hardware (e.g., Jetson, TPU, ARM‑based platforms).
  • Familiarity with SLAM, mapping, and navigation pipelines.
  • Solid software engineering skills in Python and C++ for ML system integration.
  • Proven ability to take ML models from research prototype to production deployment.
  • Strong debugging skills for diagnosing ML performance gaps in fielded systems.
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