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At Bosch Research, we are driving the next generation of Physical AI, intelligent systems capable of perceiving, reasoning about, and acting robustly in real-world environments. As vehicles become increasingly shared, automated, and software-defined, understanding what happens inside the cabin is becoming as important as understanding the road ahead. The ability to detect occupant position, posture, and movement is evolving into both a regulatory requirement and a key enabler of future safety and comfort functions. However, current perception systems largely treat the vehicle interior and exterior as separate domains, limiting their ability to form a coherent three-dimensional understanding of the cabin from the small number of cameras that can realistically be deployed in a vehicle.
Responsibilities
- Investigate neural 3D scene representations, including neural radiance fields, Gaussian splatting, and implicit occupancy models, and adapt them to the unique challenges of in-cabin perception.
- Leverage the asymmetry of the cabin environment by using the known cabin geometry as built-in supervision and by incorporating modern 3D-aware diffusion models as learned priors.
- Research the reliable reconstruction of occupants from as few as one to three fixed camera viewpoints, and create a unified representation of the vehicle interior and exterior to enable end-to-end ADAS systems that reason about passengers and surrounding traffic.
- Work at the forefront of AI innovation and contribute to real-world industrial applications within Bosch Research.
- Collaborate closely with leading experts from academia and industry to bring advances into future safety‑critical products.
- Combine fundamental research in 3D computer vision and generative modeling with the practical goal of making vehicles safer for everyone on board.
Qualifications
- Education: Excellent Master’s degree in Computer Science or a comparable field of study.
- Experience and Knowledge:
- Experience in machine learning using PyTorch, ideally with vision-based models and neural scene representation.
- Programming skills in Python and solid foundations in computer vision and 3D geometry, including camera models, projective geometry, and multi-view constraints.
- Familiarity with 3D scene representations (e.g., NeRF, Gaussian splatting, implicit/occupancy networks) or depth/3D estimation methods is strongly preferred.
- Prior exposure to differentiable rendering or articulated human pose estimation is a plus.
- Personality and Working Practice: Proactive and highly motivated mindset with the ability to confidently navigate complex technical environments.
- Languages: Good English skills, both written and spoken.
The final Ph.D. topic is subject to the supervising university.
Start: October 2026
Diversity and inclusion are not just trends for us but are firmly anchored in our corporate culture. Therefore, we welcome all applications, regardless of gender, age, disability, religion, ethnic origin or sexual identity.
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PhD - Neural 3D Scene Representations for the Automotive Cabin Location: Hildesheim, Lower Saxo[...] Arbeitgeber: Bosch
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