Senior Principal Engineer- Autonomous Driving; ADAS) Data Loop & Flywheel
Listed on 2026-10-03
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Software Development
AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Data Engineering
Senior Principal Engineer - Autonomous Driving (ADAS) Data Loop & Flywheel
- Full-time
At Bosch, we shape the future by inventing high-quality technologies and services that spark enthusiasm and enrich people’s lives. Our areas of activity are every bit as diverse as our outstanding Bosch teams around the world. Their creativity is the key to innovation through connected living, mobility, or industry.
Let’s grow together, enjoy more, and inspire each other.
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- Reinvent yourself:At Bosch, you will evolve.
- Discover new directions:At Bosch, you will find your place.
- Celebrate success:At Bosch, we celebrate you.
- Shape tomorrow:At Bosch, you change lives.
“Invented for Life” drives us at Bosch and our vision of future mobility. Autonomous vehicles will change the way we move, and at Bosch, we are working on making this future a reality. We are growing our team to build next-generation ADAS and autonomous driving platforms, and we are looking for senior electrical and system integration engineers to define, build, and scale our vehicle platform hardware.
As the Senior Principal Engineer – ADAS & AV Data Loop & AI Flywheel, you will spearhead the architectural strategy, design, and execution of the end-to-end continuous data engine powering Bosch XC’s L2+ ADAS and autonomous driving stacks (e.g., driving, parking, interior sensing) across entry, mid, and high-tier vehicle platforms.
You will serve as the chief technical authority driving the software, data loop, and MLOps machinery that automatically ingests raw fleet logs, curates high-value edge cases, auto-labels datasets, retrains deep learning models, and validates releases for embedded automotive platforms.
Key Responsibilities
- Define and execute the technical roadmap and strategy for the E2E Autonomous Driving Data Engine, including fleet data loop automation, active learning pipelines, auto-labeling, simulation, and MLOps tooling.
- Oversee the end-to-end architecture, development, and testing of the AI data flywheel and its seamless interaction with edge fleet triggers, cloud data lakes, model repositories, and automotive target hardware.
- Collaborate closely with cross-functional leads (data engineering, cloud infrastructure, embedded runtime SOC teams) to define, drive, and scale the integrated AI machinery ecosystem.
- Establish a rapid-evaluation development framework that accelerates the benchmarking, active learning selection, and continuous integration of emerging multimodal E2E AI solutions (e.g., Transformers, Occupancy Networks, Vision-Language models).
- Guide the transition of raw fleet log data and research prototypes into scalable, production-grade training and auto-labeling pipelines, ensuring runtime performance optimization on automotive-grade hardware.
- Leverage prior industry experience launching AI-based L2+ systems to implement automated validation workflows, scenario-based testing (SIL/HIL), and continuous feedback loops aligned with automotive safety standards (ISO 26262, ISO 21448 / SOTIF).
- Mentor and lead a high-caliber team of AI scientists and software engineers, establishing technical excellence in automated data engines and large-scale AI machinery.
Basic Qualifications:
- Master’s degree or Ph.D. in Computer Science, Robotics, Electrical Engineering, AI, or a closely related field focused on autonomous systems.
- 10+ years of software development and system architecture experience in ADAS or Autonomous Driving applications.
- Proven industry track record of taking AI-based L2+ or L3/L4 autonomous driving systems into mass production.
- Deep knowledge of End-to-End AI architecture, model training algorithms, and data flywheel concepts (including active learning, fleet edge-triggers, and automated data curation).
- Deep technical…
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