Mixed Signal Circuit Design Analysis & CAD Engineer ( Temporary Contract)

Advanced Micro Devices, Inc

Markham

On-site

CAD 82,000 - 147,000

Full time

13 days ago
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Job summary

Huawei Canada offers a 6–12 month internship for an Intern Researcher in the Computing Data Application Acceleration Lab. You will assist with foundation model development, architecture improvements, and distributed training systems, collaborating with hardware engineers and researchers to improve performance.

The ideal candidate is pursuing a PhD or Master in CS/EE, with exposure to AI architectures and deep learning frameworks, and a demonstrated research track record.

Qualifications

  • Currently pursuing a PhD or Master Degree in Computer Science, Electrical Engineering, or a related field.
  • Familiarity with AI architectures (transformers, mixture-of-experts) and computer architecture concepts.
  • Experience or interest in deep learning frameworks and distributed training fundamentals.
  • Demonstrated research interest via projects, internships, or publications.

Responsibilities

  • Support development and optimization of foundation models (LLM/Code/Multimodal).
  • Assist with architecture improvements, post-training optimization, and continual learning research.
  • Contribute to distributed training, benchmarking, and performance analysis.
  • Collaborate with hardware architects and algorithm engineers on experiments.

Skills

Deep learning frameworks
Model training concepts
Distributed training fundamentals
Multimodal model development
Reinforcement learning
Long-context modeling
AI agent systems
Hardware-aware optimization
Neural architecture search

Education

PhD or Master Degree in Computer Science or Electrical Engineering

Tools

PyTorch
vLLM
SGLang

Job description

Huawei Canada has an immediate 6-12 months internship opening for an Intern Researcher.
About the team:

The Computing Data Application Acceleration Lab aims to create a leading global data analytics platform organized into three specialized teams using innovative programming technologies. This team focuses on full-stack innovations, including software-hardware co-design and optimizing data efficiency at both the storage and runtime layers. This team also develops next-generation GPU architecture for gaming, cloud rendering, VR/AR, and Metaverse applications.

One of the goals of this lab are to enhance algorithm performance and training efficiency across industries, fostering long-term competitiveness.

About the job:

Support the development and optimization of foundation models (LLM / Code / Multimodal) by: assisting with model architecture improvements and experimentation, contributing to post-training optimization techniques, supporting research on continual learning approaches, exploring hardware-aware methods to improve model efficiency.

Assist in building and optimizing distributed training and inference systems: learn and apply parallelization strategies (model / tensor / data parallelism), support operator-level and computational graph optimizations, contribute to performance benchmarking and analysis.

Collaborate with cross-functional teams: work closely with hardware architects and algorithm engineers on research and development tasks and support experiments and prototyping to improve system and model performance.

The total target annual compensation (based on 2,080 hours per year) ranges from $58,000 to $104,000 depending on education, experience, and demonstrated expertise.

Job requirements
About the ideal candidate:

Currently pursuing a PhD or Master Degree in Computer Science, Electrical Engineering, or a related field, with exposure to areas such as: AI architectures (e.g., transformers, mixture-of-experts), Computer architecture (e.g., memory systems, interconnects) or related domains

Familiarity with one or more of the following: Deep learning frameworks (e.g., PyTorch, vLLM, SGLang), large-scale model training concepts, distributed training fundamentals (e.g., data/model/tensor parallelism).

Demonstrated interest in research and development through: Academic projects, internships, or publications.

Technical Interests (experience in at least one is a plus): Multimodal model development, Reinforcement learning, Long-context modeling, AI agent systems, hardware-aware model optimization or neural architecture search.

Preferred qualifications: Hands-on experience with GPUs or AI accelerators (e.g., GPU / NPU / TPU), Contributions to academic or open-source ML projects, prior internship or research experience in AI/ML systems.

Huawei Canada is committed to a fair, inclusive, and accessible recruitment process. If you require accommodation during any stage of the hiring process, please let us know and we will work with you to meet your needs.

All applications for this position are reviewed directly by our hiring team, we do not use artificial intelligence tools to screen or select candidates.

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