Software Engineer, Kernel Reliability

Posted Yesterday
2 Locations
Remote
Entry level
Artificial Intelligence • Hardware • Software • Semiconductor
The Role
Develop kernel-centric reliability solutions for AI compute clusters and production services. Responsibilities include debugging failures, building diagnostic tools, supporting incident response, performing root-cause analysis, improving kernel and software reliability, and collaborating with systems, hardware, ASIC, and architecture teams on reliability-focused designs.
Summary Generated by Built In

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

We're looking for a deeply technical, hands-on software engineer to join our on-field Kernel Reliability team. You'll help tackle a critical challenge: improving the reliability of our advanced compute clusters and the underlying inference, training, and internal production services. In this role, you'll work close to the code and design solutions that will scale with our rapidly growing system production and software service offerings. If you have strong fundamentals in systems, debugging, and failure analysis—and enjoy building tools and solving hard reliability problems—we want to hear from you. New college graduates are welcome.

Responsibilities

  • Contribute to the technical roadmap and execution for kernel-centric reliability of our internal and customer-facing systems.

  • Partner with System and Cluster Operations teams to reduce system and service downtime after failure through tooling, analysis, and hands-on debugging support.

  • Work with the Debug Team to enhance debug tools with the goal of speeding up failure analysis.

  • Collaborate with software teams to improve the software stack—including kernels—to improve on-field debugging and failure analysis.

  • Work with ASIC and hardware architecture teams to co-design next-generation architectures with reliability and ease of debug in mind.

  • Participate in incident response, root-cause analysis, and post-mortems; drive follow-ups that measurably improve reliability over time.

Skills & Qualifications

  • We recognize great engineers come from different backgrounds. If you're excited about the role, we encourage you to apply even if you don't meet every qualification.

  • Required (or demonstrated through projects/internships/coursework):

    • Strong programming skills in C/C++ and Python.

    • Solid foundations in operating systems, computer architecture, and systems programming fundamentals.

    • Ability to debug complex issues using logs, traces, and standard debugging workflows; interest in root-cause analysis.

Preferred Skills & Qualifications

  • Exposure to parallel and distributed programming (message passing, multicore, GPU, embedded, etc.).

  • Experience building or using debug/diagnostic tools (debuggers, core dump handling, tracing, sanitizers, profilers, etc.).

  • Familiarity with debugging distributed and parallel applications (deadlocks, livelocks, race conditions, etc.).

  • Knowledge of computer architecture concepts (instruction pipelining, multithreading, networking, memory systems, etc.).

  • Operations & Monitoring: familiarity with monitoring, incident response, and post-mortem culture.

Why Join Cerebras

People 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:

  1. Build a breakthrough AI platform beyond the constraints of the GPU.

  2. Publish and open source their cutting-edge AI research.

  3. Work on one of the fastest AI supercomputers in the world.

  4. Enjoy job stability with startup vitality.

  5. Our simple, non-corporate work culture that respects individual beliefs.

Find out more about what it's like to work at Cerebras here!

Apply today and become part of the forefront of groundbreaking advancements in AI!

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.

This website or its third-party tools process personal data. For more details, click here to review our CCPA disclosure notice.

Skills Required

  • Strong programming skills in C/C++ and Python
  • Foundational knowledge of operating systems, computer architecture, and systems programming
  • Ability to debug complex issues using logs, traces, and standard debugging workflows
  • Interest in root-cause analysis
  • Exposure to parallel and distributed programming
  • Experience building or using debugging and diagnostic tools
  • Experience debugging distributed and parallel applications, including deadlocks, livelocks, and race conditions
  • Knowledge of computer architecture concepts, including instruction pipelining, multithreading, networking, and memory systems
  • Familiarity with monitoring, incident response, and post-mortem practices
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The Company
774 Employees
Year Founded: 2015

What We Do

Cerebras Systems develops wafer-scale semiconductor hardware, AI supercomputers, and software/cloud services for training and inference. Its CS-2 and CS-3 systems help organizations build on-premise AI supercomputers, while pay-as-you-go cloud offerings provide developers and enterprises access to its computing platform. The company focuses on making AI training and inference faster and easier for diverse research and production workloads at scale worldwide.

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