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4,759

Computer Science jobs in Canada

Researcher - AI Computing System

Huawei Technologies Canada Co., Ltd.

Burnaby
On-site
CAD 78,000 - 150,000
30+ days ago
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Senior Software Engineer - Platform Team

Brinqa

Nova Scotia
Hybrid
CAD 80,000 - 120,000
30+ days ago

Principal Software Engineer - Platform Team

Brinqa

Nova Scotia
Hybrid
CAD 90,000 - 130,000
30+ days ago

Senior Platform Engineer - Scalable SaaS (Remote, Canada)

Brinqa

Nova Scotia
Hybrid
CAD 80,000 - 120,000
30+ days ago

Principal Software Engineer - Data Pipeline Architect

Brinqa

Nova Scotia
Hybrid
CAD 100,000 - 140,000
30+ days ago
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Senior DevOps Engineer

Brinqa

Nova Scotia
Hybrid
CAD 100,000 - 130,000
30+ days ago

Generative AI Developer

RGBSI

Windsor
On-site
CAD 90,000 - 115,000
30+ days ago

Technical Product Manager, Implementation and Professional Services

Shakudo

Toronto
On-site
CAD 80,000 - 120,000
30+ days ago
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Salesforce Excellence Specialist

Galderma

Vaughan
Hybrid
CAD 80,000 - 100,000
23 days ago

Data Analytics Engineer - Hybrid

Ribbon Communications

Ottawa
Hybrid
CAD 80,000 - 100,000
30+ days ago

Data Pipeline Engineer - Hybrid

Ribbon Communications

Ottawa
Hybrid
CAD 80,000 - 100,000
30+ days ago

AI Development Engineer - Remote

NTT DATA, Inc.

Toronto
Remote
CAD 90,000 - 120,000
30+ days ago

Computing Science Lecturer

WiMLDS Inc

British Columbia
On-site
CAD 98,000 - 120,000
30+ days ago

Junior Software Developer

Cpus Engineering Staffing Solutions Inc.

Courtice
On-site
CAD 60,000 - 80,000
30+ days ago

AI Application Developer

Ciena

Canada
On-site
CAD 93,000 - 151,000
30 days ago

AI Application Developer

Ciena

Ottawa
Remote
CAD 93,000 - 151,000
30 days ago

Data Scientist

BGIS

Markham
On-site
CAD 100,000 - 120,000
30+ days ago

Senior Data Scientist

Geotab

Oakville
Hybrid
CAD 90,000 - 130,000
30+ days ago

RQ09515 - Technology Architect - Senior

Rubicon Path

Toronto
On-site
CAD 120,000 - 150,000
30+ days ago

Data Engineer (Contract)

Medium

Toronto
On-site
CAD 80,000 - 110,000
30+ days ago

Data Practice Lead

Medium

Toronto
On-site
CAD 110,000 - 140,000
30+ days ago

Data Engineer

Medium

Toronto
On-site
CAD 80,000 - 110,000
30+ days ago

CMDB, Lead

Interac

Toronto
On-site
CAD 100,000 - 130,000
30+ days ago

Senior Software Developer, React/NextJS

leap tools

Canada
On-site
CAD 90,000 - 120,000
30+ days ago

Software Developer, React/NextJS

Leap Tools Inc.

Canada
Remote
CAD 70,000 - 90,000
30+ days ago

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Researcher - AI Computing System
Huawei Technologies Canada Co., Ltd.
Burnaby
On-site
CAD 78,000 - 150,000
Full time
30+ days ago

Job summary

A leading technology firm is seeking a Researcher to join their team in Burnaby, Canada. This role involves optimizing AI systems, developing software frameworks, and improving AI training for large models. The ideal candidate will have a Ph.D or Master's in Computer Science, along with solid programming skills and experience with AI accelerators. The target annual compensation ranges from $78,000 to $150,000, commensurate with experience and expertise.

Qualifications

  • Ph.D or Master's degree in Computer Science or related fields.
  • Familiarity with large model training and AI optimization.
  • Experience optimizing AI systems with coordinated software and hardware.

Responsibilities

  • Design and develop optimization solutions for AI systems.
  • Build stable and efficient AI training clusters.
  • Develop software frameworks for NPU platforms to accelerate training.

Skills

Solid programming foundation
Familiar with Python/C/C++
Strong research capabilities
Good communication skills
Ability to work independently

Education

Ph.D or Master's degree in Computer Science or related fields

Tools

AI training frameworks
AI reasoning engines
GPU/NPU experience
Job description

Huawei Canada has an immediate 12 month contract opening for a Researcher.

About the team:

The Advanced Computing and Storage Lab, currently a part of the Vancouver Research Centre, aims to explore adaptive computing system architectures to address the challenges posed by flexible and variable application loads in the future. It assists in ensuring the stability and quality of training clusters, constructs dynamic cluster configuration strategy solvers, and establishes precision control systems to create stable and efficient computing power clusters. One of the lab's goals is to focus on key industry AI application scenarios such as large model training/inference, based on key technologies like low-precision training, multi-modal training, and reinforcement learning, responsible for bottleneck analysis and the design and development of optimization solutions, thereby improving training and inference performance as well as usability.

About the job:
  • Aiming at key industry AI application scenarios such as large model training and inference, this role focuses on advancing performance, efficiency, and usability of AI systems on the Ascend platform. The work involves low-precision training, multimodal optimization, reinforcement learning, and training resource optimization to address system bottlenecks and deliver next-generation AI capabilities.

  • Responsible for design and development of optimization solutions for AI training and inference systems, with a focus on FP8 optimization, RL-driven training agents, multimodal reinforcement learning or next-generation multi-modal understanding & generation.

  • Combine AI algorithm requirements with system-level architectural optimization in computing, I/O, scheduling, and precision control to improve performance.

  • Build stable, efficient AI training clusters, leveraging dynamic cluster configuration and precision control to ensure scalability and reliability.

  • Develop software frameworks, operator libraries, acceleration libraries, and system-level optimizations for NPU platforms to accelerate large-model AI training.

  • Drive innovation in optimizing large-model training and inference with low-precision training, parallel strategy tuning, and reinforcement learning.

  • Grasp the latest research progress and technological trends in AI computing cluster architecture design, training acceleration, and inference acceleration across academia and industry to strengthen the competitiveness of AI computing cluster systems.

The target annual compensation (based on 2080 hours per year) ranges from $78,000 to $150,000 depending on education, experience and demonstrated expertise.

About the ideal candidate:
  • Ph.D or Masters degree in Computer Science, Computer Engineering majors in artificial intelligence, computer science, software, automation, electronics, communications, robotics, etc.

  • Familiar with the common model structures of large models such as Deepseek and Llama, and have basic technical accumulation in large model training and inference optimization in the fields of LLM, MoE, multimodality, etc.

  • Familiar with the hardware architecture and programming system of AI accelerators such as GPU/NPU, and have experience in optimizing AI systems with coordinated software and hardware cores.

  • Those with any of the following experience is an asset:

    1) Solid programming foundation, familiar with Python/C/C++ programming languages, good architecture design and programming habits

    2) Ability to work independently and solve problems, good at communication, willing to cooperate, keen on new technologies, good at summarizing and sharing, and like hands‑on practice

    3) Experience in the development of AI training frameworks and AI reasoning engines, or algorithm hardware and related experience

    4) Strong research capabilities in new technologies and new architectures, can quickly track and gain insights into the most cutting‑edge AI technologies in the industry, and lead the continuous leadership of system architecture innovation.

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* The salary benchmark is based on the target salaries of market leaders in their relevant sectors. It is intended to serve as a guide to help Premium Members assess open positions and to help in salary negotiations. The salary benchmark is not provided directly by the company, which could be significantly higher or lower.

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