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Principal Machine Learning (ML)/ Artificial Intelligence (AI) Engineer- AI Cockpit

The Bosch Group · Plymouth, MI
Full-timeGeneralLead$179,000–$241,000/yr
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About the Principal Machine Learning Artificial Intelligence Engineer role

Principal Machine Learning Artificial Intelligence Engineer positions focus on delivering results in their domain. This page aggregates open Principal Machine Learning Artificial Intelligence Engineer roles and what employers typically expect.

## Company Description 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. **Work #LikeABosch** • **Reinvent yourself:** At Bosch, you will evolve. **• Discover new directions**: At Bosch, you will find your place. **• Balance your life:** At Bosch, your job matches your lifestyle. **• Celebrate success:** At Bosch, we celebrate you. **• Be yourself:** At Bosch, we value values. **• Shape tomorrow:** At Bosch, you change lives. ## Job Description **Role Overview** We are seeking a highly skilled Technical Lead / Architect to drive the design, development, and delivery of next-generation AI-powered smart cockpit solutions for Automotive. This role will lead the technical vision and execution of an intelligent, context-aware in-vehicle experience that transforms the cockpit into a proactive, personalized companion for drivers and passengers. You will work at the intersection of AI, embedded systems, and automotive software, shaping scalable architectures while coordinating cross-functional teams to bring innovative cockpit experiences to production. **Key Responsibilities** - Define and own the end-to-end architecture for AI-driven smart cockpit systems across hardware, middleware, and application layers - Lead design and implementation of AI/ML pipelines, model optimization, deployment, and lifecycle management - Architect multi-model/LLM orchestration and on-device model adaptation (fine-tuning, distillation) for edge automotive deployment, including model selection, routing, and inference optimization on GPU/NPU SoCs - Architect efficient edge AI execution, optimizing models for CPU/GPU/NPU (quantization, pruning, latency, power) - Design hybrid edge–cloud architectures for personalization, continuous learning, and scalable feature delivery - Integrate multimodal AI capabilities (voice, vision, sensor fusion) with real-time and safety-critical constraints - Establish robust data pipelines, telemetry, and feedback loops, enabling continuous model validation, performance monitoring, and iterative improvement of AI capabilities in production - Define the AI evaluation and observability framework, including model quality testing, regression checks, and production monitoring tied to release readiness - Drive technical program execution across architecture, AI, and integration workstreams — including planning, dependencies, risk management, milestone tracking, cross-functional coordination, and stakeholder communication — to ensure on-time, high-quality production readiness ## Qualifications **Required Qualifications** - Bachelor's or Master's degree in Computer Science, Artificial Intelligence, or a related field with 5+ years of experience in AI/ML-driven system development. - Strong hands-on expertise in machine learning, deep learning, and AI system design, with experience deploying models on edge, embedded, or automotive platforms. - Experience integrating AI and Generative AI/LLM-based capabilities into real-time, resource-constrained environments. - Strong knowledge of edge AI optimization techniques (quantization, pruning, distillation) and proficiency in Python and C++, along with experience in embedded AI lifecycle management, including OTA updates and fleet telemetry. - Hands-on experience with LLM/generative-AI orchestration and model fine-tuning/adaptation in real-time, resource-constrained environments. - Strong understanding of cloud platforms architecture and edge–cloud orchestration, and proven ability to lead cross-functional engineering teams. **Preferred Qualifications** - Knowledge of automotive cockpit systems (voice assistants & personalization) - Experience with on-device voice pipelines (A…

Salary estimate

$179,000 – $241,000/yr
Provided by the employer.

Skills for this role

PythonC++SparkMachine LearningLLMCommunication

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