Job Description

Job Summary


We are looking for an AI Application Engineer to support the enablement, optimization, and deployment of AI models on automotive-grade SoCs.


In this role, you will work closely with internal compiler/runtime teams and external customers to bring AI models from training to optimized inference on embedded NPU/DSP platforms, with a strong focus on performance, accuracy, and system integration.


Key Responsibilities


AI Model Enablement & Optimization



  • Enable and deploy AI models (e.g., BEV, object detection, segmentation, classification) on Gen4/5 SoC platforms with CNNIP/DSP/NPU HWA.

  • Perform model performance analysis (latency, throughput, multi-core scaling) and identify bottlenecks related to memory bandwidth, scheduling, or operator mapping.

  • Support model optimization workflows, including:

    • Post-Training Quantization (PTQ)

    • Quantization-Aware Training (QAT) collaboration

    • Operator fusion, graph optimization, and execution partitioning


  • Analyze accuracy degradation caused by quantization or operator limitations and propose mitigation strategies.


Embedded AI Inference & System Integration



  • Integrate AI models into embedded runtime environments (Linux / QNX).

  • Debug issues related to:

    • CNNIP/DSP/NPU offloading

    • Memory allocation / IPMMU

    • Data transfer overhead and multi-core synchronization


  • Validate AI workloads on target boards and simulators (SIL / HIL).


Toolchain & Model Workflow Support



  • Work with AI compiler and runtime toolchains (e.g., ONNX-based workflows, hybrid compiler, MWMX).

  • Support ONNX model handling, including:

    • Graph inspection and modification

    • Model segmentation and execution control

    • Quantized (QDQ) ONNX models


  • Develop or maintain internal tools and scripts to improve model validation, benchmarking, and customer workflows.


Customer & Cross-Team Collaboration



  • Act as a technical interface between customers, internal development teams, and field application engineers.

  • Support customer evaluations, PoCs, and demos on automotive AI platforms.

  • Provide technical guidance, documentation, and best practices for AI model deployment.

  • Contribute to weekly technical reports, issue tracking, and release validation activities.



Qualifications

Required Qualifications



  • Bachelor’s or Master’s degree in Computer Science, Electrical Engineering, Embedded Systems, or have experience in embedded systems.

  • Solid understanding of deep learning fundamentals and inference pipelines.

  • Hands-on experience with AI frameworks such as PyTorch, ONNX, or ONNX Runtime.

  • Strong programming skills in Python; working knowledge of C/C++ is a plus.

  • Familiarity with embedded systems and debugging tools.

  • Ability to analyze performance using metrics such as latency, throughput, and hardware utilization.

  • Good communication skills in a multi-cultural, cross-functional environment.


Preferred / Optional Qualifications



  • 1–3 years of experience in embedded systems or AI-related development.

  • Experience with AI model training, fine-tuning, or evaluation, especially for:

    • Computer vision models (Detection / Segmentation / BEV)

    • Automotive or robotics use cases


  • Practical experience with AI inference optimization on embedded hardware (NPU, DSP, GPU, or CPU).

  • Familiarity with quantization techniques (INT8, calibration methods, QDQ models).

  • Experience with automotive SoCs or safety-related software environments (QNX is a plus).

  • Understanding of memory hierarchy, DMA, and multi-core scheduling in SoC architectures.


Nice to Have



  • Experience supporting customers or acting in a technical support / application engineering role.

  • Knowledge of automotive AI standards or ADAS perception pipelines.

  • Experience contributing to internal tools, scripts, or documentation.

  • Ability to read and debug ONNX graphs or intermediate representations.



Additional Information

ルネサスは、「To Make Our Lives Easier(人々の暮らしをより豊かで快適にする)」というPurposeのもと、組込み半導体ソリューションを提供するグローバル企業です。世界30か国以上で活躍する21,000人を超えるエンジニアや課題解決のプロフェッショナルとともに、自動車、産業、インフラ、IoT分野における世界最先端のテクノロジー開発に携わり、より安全で、健康的で、環境にやさしく、スマートな未来の実現に貢献しています。 


ルネサスでは、「TAGIE(Transparent、Agile、Global、Innovative、Entrepreneurial)」を企業文化の中核としています。TAGIEは、私たちの働き方や成長のあり方、そしてPurposeの実現に向けた取り組みを支える共通の価値観です。この協調的な精神と挑戦するマインドセットが、半導体技術を通じた産業の変革と、世界中の人々の暮らしへの貢献を可能にしています。 


私たちは、競争力のある報酬制度に加え、充実した福利厚生をご用意しています。福利厚生の詳細については、選考プロセスの中でご案内いたします。 


私たちとともに未来を創造する挑戦に、ぜひ参加しませんか。皆さまからのご応募をお待ちしております。 

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