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Sr. Staff Embedded AI Engineer

Renesas Electronics

Columbia · On-site Full-time Senior Today

About the role

About

Renesas is seeking a Sr. Staff Embedded AI Engineer to develop advanced TinyML and embedded AI solutions targeting Renesas microcontroller and MPU platforms (RA, RL78, RX, RZ). This is a highly technical, hands-on role focused on building cloud-based model translation infrastructure and optimizing network inference for resource-constrained embedded systems. You will contribute to a small team developing a service that converts trained machine learning models into efficient C/C++ implementations for deployment on microcontrollers. The ideal candidate combines strong embedded software expertise with solid machine learning fundamentals and is comfortable working across the stack — from neural network internals to low-level performance optimization. You should be someone who contributes new ideas, challenges assumptions, and helps improve both tooling and embedded implementation quality.

Job Description

  • BS/MS/PhD in Electrical Engineering, Computer Engineering, Computer Science, or related field.
  • 6+ years of experience in embedded systems software development.
  • Strong proficiency in C/C++ for embedded platforms.
  • Strong proficiency in Python for tooling, automation, or ML workflows.
  • Experience deploying machine learning models to resource-constrained systems.
  • Solid understanding of neural network fundamentals and internals
  • Experience with machine learning frameworks such as TensorFlow or PyTorch.
  • Experience optimizing performance, memory footprint, and power consumption on embedded targets.

Qualifications

  • Experience developing inference runtimes, model translation tools, or code generation systems.
  • Experience with CMSIS-NN or other embedded ML acceleration libraries.
  • Experience optimizing quantized neural networks for embedded systems using SIMD/DSP acceleration.
  • Familiarity with Renesas MCU/MPU platforms (RA, RL78, RX, RZ).
  • Experience with real-time systems (RTOS or bare-metal).
  • Hardware debugging experience.

Skills

C++CCMSIS-NNDockerEmbedded CEmbedded C++Machine LearningMicrocontrollersMPUPyTorchPythonRenesas RARenesas RL78Renesas RXRenesas RZRTOSSIMDTensorFlowTinyML

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