Software Engineer- ModelZoo

NXP Semiconductors


Date: 2 hours ago
City: Hyderabad
Contract type: Full time

Exp: 2-3 years

We're looking for a skilled and motivated Machine Learning Software to join our team. The ideal candidate will have a solid foundation in deep learning and a strong interest in optimizing and deploying ML models on specialized hardware. This role involves implementing model optimizations, with a particular focus on quantization, to improve the performance of machine learning inference on target platforms.

Key Responsibilities

  • Model Porting & Deployment: Port and deploy deep learning models from frameworks like PyTorch and TensorFlow to proprietary or commercial ML accelerator hardware platforms.
  • Performance Optimization: Analyze and improve the performance of ML models for target hardware, focusing on latency and throughput.
  • Quantization: Contribute to model quantization efforts (e.g., INT8 ) to reduce model size and accelerate inference while maintaining model accuracy.
  • Profiling & Debugging: Use profiling tools to identify and fix performance bottlenecks in the ML inference pipeline on the accelerator.

Required Qualifications

Technical Skills:

  • Proficiency in deep learning frameworks such as PyTorch and TensorFlow .
  • Hands-on experience with deploying and optimizing models on GPUs or other specialized accelerators.
  • Some experience with model quantization ( Post-Training Quantization ).
  • Strong proficiency in C++ and Python .
  • Experience with GPU programming models like CUDA/cuDNN is a plus.
  • Familiarity with ML inference engines and runtimes (e.g., TensorRT , OpenVINO , TensorFlow Lite ).
  • Foundational understanding of computer architecture principles.
  • Version Control: Proficient with Git and collaborative development workflows.
  • Education: Bachelor's or Master's degree in Computer Science, Electrical Engineering, or a related field.

Preferred Qualifications

  • Knowledge of hardware-aware model design.
  • Familiarity with compiler technologies for deep learning.
  • Experience with real-time or embedded systems.
  • Knowledge of cloud platforms (AWS, GCP, Azure).
  • Experience with CI/CD pipelines for ML models.


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