Research Engineer Training Large Behavior Models with Reinforcement Learning (EG16, fmdiv.)

Bosch Group

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profile Job Location:

Böblingen - Germany

profile Monthly Salary: Not Disclosed
Posted on: 9 hours ago
Vacancies: 1 Vacancy

Job Summary

  • As a research engineer in the semantic understanding and reasoning group (CR/AIR4) at Bosch Corporate Research you will develop next-generation methods for training large behavior models for intelligent cyber-physical systems. Your work will focus on how large-scale AI models can acquire robust generalizable and goal-directed behaviors through reinforcement learning multimodal experience and interaction with learned or simulated environments.
  • A central part of the role is the use of world models as a foundation for training and validating these this context you will investigate how predictive models of environment dynamics latent state and agent-environment interaction can support policy learning planning behavior synthesis and evaluation. This includes leveraging world-model-based rollouts for scalable training using imagined trajectories for efficient policy improvement and developing validation frameworks that assess generalization robustness and safety before real-world deployment.
  • Your work will bridge foundational research and practical implementation and will contribute to the design of architectures that connect representation learning latent dynamics modeling reinforcement learning and large-scale behavior modeling. Building the infrastructure needed for pretraining simulation-based learning fine-tuning and benchmarking in Bosch-relevant environments is also part of this role.
  • The application space spans a broad range of Bosch domains including robotics industrial automation automated driving and intelligent building or energy systems. You will collaborate closely with AI researchers robotics experts control engineers and domain specialists to ensure that the developed methods are scientifically strong and strategically relevant for real-world Bosch systems.
  • Your contributions will help establish core Bosch capabilities in scalable behavior learning model-based reinforcement learning and physically grounded AI systems that can be trained validated and adapted efficiently across applications. 

Qualifications :

  • Education: 
    • excellent MSc in Computer Science Machine Learning Robotics Control or related technical fields
    • PhD in Machine Learning Reinforcement Learning Robotics Generative AI or related areas preferred
    • strong publication record in leading AI machine learning and robotics venues such as NeurIPS ICLR ICML CoRL RSS ICRA AAAI IJCAI or similar 
  • Experience and Knowledge:
    • Reinforcement Learning & Behavior Learning
      • expertise in reinforcement learning and sequential decision-making for complex environments
      • experience with model-based offline hierarchical imitation or constrained RL
      • training large-scale behavior or policy models from multimodal data and interaction
      • designing methods for long-horizon optimization generalization and robust adaptation
      • strong interest in behavior validation robustness testing sim-to-real and safety
    • World Models & Predictive Learning
      • solid understanding of world models latent dynamics and sequence or generative models
      • using predictive models for imagination-based training rollouts and planning
      • experience with latent-state modeling uncertainty-aware prediction and validation
      • Interest in connecting data-driven learning with physically grounded reasoning
    • Large Models Multimodal Learning & Foundation AI
      • experience with large-scale deep learning and transformer-based or multimodal models
      • representation learning across visual temporal action language or sensor modalities
      • interest in large behavior models as transferable reusable AI components
      • linking large-model training with policy learning and environment interaction
    • Industrial Experience Software Engineering & AI Infrastructure
      • strong Python skills and experience with PyTorch TensorFlow or JAX
      • experience with simulation platforms (e.g. Isaac Sim CARLA MuJoCo Habitat)
      • familiarity with distributed training benchmarking and reproducible pipelines
      • experience with Docker Git CI/CD and multi-GPU or cloud infrastructure
  • Personality and Working Practice: you bring a strong scientific mindset with a proven publication record in top-tier AI and robotics venues; you are able to translate cutting-edge research into practical valuecreating innovations and connect foundational AI methods with Boschrelevant challenges and application scenarios; you have a collaborative mindset and enjoy working across AI research robotics control within engineering teams
  • Languages: fluent English skills written and spoken German is a plus

Additional Information :

 
submit all relevant documents (CV certificates and links to GitHub or kaggle account). 

We offer flexible working models: from various part-time options to mobile working and job sharing. Feel free to contact us.

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.

Need support during your application
Meltem Arabacioglu (Human Resources)

Need further information about the job
Michael Pfeiffer (Functional Department)
49 5
Jim Mainprice (Functional Department)
49 9

Work #LikeABosch starts here: Apply now!


Remote Work :

No


Employment Type :

Full-time

As a research engineer in the semantic understanding and reasoning group (CR/AIR4) at Bosch Corporate Research you will develop next-generation methods for training large behavior models for intelligent cyber-physical systems. Your work will focus on how large-scale AI models can acquire robust gene...
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Bosch first started in Vietnam with a representative office in 1994. Bosch has its main office in Ho Chi Minh City, with branch offices in Hanoi and Da Nang, and a Powertrain Solutions plant in the Dong Nai province to manufacture pushbelt for continuously variable transmissions (CVT) ... View more

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