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Research Scientist (Wayve Labs)

Wayve · Vancouver, Canada

External listingfull-time3 months ago

About The Role

Join Wayve Labs as an Applied Scientist and contribute to the development of cutting-edge AI systems for autonomous driving. You will work at the intersection of machine learning, simulation, robotics, and real-world deployment, focusing on core innovations in embodied AI. The role offers a competitive compensation package, private healthcare, paid time off, mental health resources, and opportunities for learning and development.

  • Contribuer aux innovations fondamentales qui repoussent les limites de l'IA incarnée, en travaillant à l'intersection de l'apprentissage automatique, de la simulation, de la robotique et du déploiement dans le monde réel.
  • Développer des modèles du monde et des planificateurs pour une simulation réaliste et cohérente, en utilisant des approches basées sur la diffusion, autoregressive ou hybrides.
  • Avancer l'apprentissage par renforcement et la modélisation des récompenses, en construisant des cadres d'apprentissage évolutifs et sûrs à travers des données réelles et synthétiques.
  • Generative world modeling (e.g., diffusion, autoregressive, hybrid approaches)
  • 3+ years of experience developing and deploying ML systems in real-world or production settings
  • Track record of publications at top-tier conferences (e.g., NeurIPS, ICML, ICLR, CVPR, ICCV, CoRL)
  • Foundation models (e.g., transformers, MoE, large-scale training)
  • A data-centric mindset, with experience working on large-scale datasets and evaluation
  • PhD, Master’s degree, or equivalent experience in Machine Learning, Computer Vision, Robotics, or a related field
  • Strong problem-solving ability and the ability to collaborate effectively in interdisciplinary teams
  • Deep expertise in one or more core Embodied AI areas, such as:
  • Strong programming skills in Python, with experience using frameworks such as PyTorch
  • Reinforcement learning (e.g., offline RL, RLHF, reward modeling)
  • Spatial AI (e.g., SLAM/SfM, depth estimation, multi-view geometry with multimodal sensors)
  • Experience with sim-to-real transfer or data-efficient learning
  • Contributions to open-source ML tools or research infrastructure
  • Familiarity with large-scale training (e.g., FSDP, DeepSpeed, JAX)
  • Experience in autonomous driving, robotics, or simulation systems
  • We understand that everyone has a unique set of skills and experiences and that not everyone will meet all of the requirements listed above. If you’re passionate about self-driving cars and think you have what it takes to make a positive impact on the world, we encourage you to apply

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