ML Software Engineer - Integration & Quality - New Grad
Quick Summary
Cerebras Systems builds the world's largest AI chip, 56 times larger than GPUs.
Cerebras Systems builds the world's largest AI chip, 56 times larger than GPUs. This architecture allows Cerebras to deliver industry-leading training and inference speeds; over 10 times faster than GPU-based hyperscale cloud inference services.
This order of magnitude increase in speed is transforming the user experience of AI applications, unlocking real-time iteration and increasing intelligence via additional agentic computation.
Cerebras works with the leading model labs, global enterprises, and cutting-edge AI-native startups. OpenAI recently announced a multi-year partnership with Cerebras, to deploy 750 megawatts of scale, transforming key workloads with ultra high-speed inference.
About the Role
~1 min readWe are looking for a new graduate or early-career Software Engineer to join the ML Integration and Quality team at Cerebras. This team works at the intersection of machine learning infrastructure, distributed systems, and hardware/software co-design.
In this role, you will help integrate, test, and validate the software stack that powers the Cerebras AI platform. You will work alongside experienced engineers across runtime, compiler, kernel, infrastructure, and hardware teams to investigate issues, build automation, and improve the reliability of large-scale machine learning workloads.
This is an excellent opportunity for an early-career engineer who enjoys solving technical problems, learning how complex systems work, and gaining hands-on experience with large-scale AI infrastructure.
Responsibilities
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Help integrate and validate software components across the Cerebras AI platform.
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Develop automated tests and tools that support software integration, system validation, and release quality.
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Investigate software failures, test regressions, and unexpected system behavior with support from senior engineers.
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Collaborate with engineers across ML runtime, compiler, kernel, infrastructure, and hardware teams.
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Contribute to the development and maintenance of testbeds used to validate system functionality, performance, and reliability.
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Help reproduce, document, and troubleshoot issues across different layers of the ML software stack.
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Contribute to test plans and validation strategies for new features and platform capabilities.
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Improve internal tooling, diagnostics, logging, and debugging workflows.
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Analyze test results and system data to identify failure patterns, edge cases, and opportunities for improvement.
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Participate in code reviews, technical discussions, and team development processes.
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Learn about distributed systems, machine learning infrastructure, and hardware/software interactions while contributing to production software.
Requirements
~1 min readBachelor’s or Master’s degree in Computer Science, Computer Engineering, Software Engineering, Electrical Engineering, or a related technical field.
Strong programming fundamentals in Python, C++, Go, Java, or a similar language.
Understanding of core computer science concepts, including data structures, algorithms, operating systems, or computer architecture.
Experience debugging software through internships, research, or co-op placements.
Familiarity with software development practices such as version control, unit testing, and code reviews.
Strong analytical and problem-solving skills.
Interest in working across multiple areas of a complex software system.
Ability to communicate clearly and collaborate effectively within a technical team.
Curiosity, attention to detail, and a willingness to learn new technologies.
Internship, co-op, research, or project experience in software engineering, systems engineering, infrastructure, or machine learning.
Exposure to machine learning frameworks such as PyTorch, TensorFlow, or JAX.
Familiarity with Linux development environments and command-line tools.
Exposure to distributed systems, networking, cloud infrastructure, or large-scale compute environments.
Experience building test automation, developer tools, or internal software utilities.
Familiarity with containers or orchestration technologies such as Docker or Kubernetes.
Exposure to debugging, profiling, monitoring, or observability tools.
Understanding of compilers, computer architecture, hardware accelerators, or parallel computing.
Interest in large language models, multimodal models, or machine learning model deployment.
This role follows a hybrid schedule and requires in-office presence three days per week. Fully remote work is not available.
Office locations:
Sunnyvale, California
Toronto, Ontario
What We Offer
~1 min readPeople who are serious about software make their own hardware. At Cerebras, we have built a breakthrough architecture that is unlocking new opportunities for the AI industry. With dozens of model releases and rapid growth, we’ve reached an inflection point in our business. Members of our team tell us there are five main reasons they joined Cerebras:
Cerebras Systems is committed to creating an equal and diverse environment and is proud to be an equal opportunity employer. We celebrate different backgrounds, perspectives, and skills. We believe inclusive teams build better products and companies. We try every day to build a work environment that empowers people to do their best work through continuous learning, growth and support of those around them.
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Location & Eligibility
Listing Details
- Posted
- July 23, 2026
- First seen
- July 23, 2026
- Last seen
- July 24, 2026
Posting Health
- Days active
- 0
- Repost count
- 0
- Trust Level
- 60%
- Scored at
- July 23, 2026
Signal breakdown
Cerebras Systems is revolutionizing AI acceleration with its innovative hardware solutions designed to enhance deep learning capabilities.
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