Staff Kernel Optimzation Engineer

Cerebras

United States

Remote

USD 140,000 - 180,000

Full time

14 days+
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Job summary

Cerebras Systems seeks a Kernel Engineer to push the limits of AI and HPC kernels on our massive parallel processor. You will design, implement, optimize, and validate high-performance kernels that fully leverage Cerebras hardware, contributing to world-class throughput and efficiency.

You will collaborate with hardware architects and software teams to scale kernels, libraries, and tooling for state-of-the-art neural networks and simulations, driving performance across CPU/GPU-less architecture.

Qualifications

  • Experience with kernel development for ML/HPC workloads.
  • Strong knowledge of C++ and Python; debugging skills.
  • Familiarity with low-level assembly or CSL languages is a plus.

Responsibilities

  • Develop design specs for ML and linear algebra kernels for Cerebras WSE System.
  • Develop and debug kernel libraries using low-level assembly and CSL language.
  • Evaluate performance with models and analysis to inform design decisions.
  • Create unit and system tests to verify kernel functionality.
  • Collaborate with chip and system architects to optimize instruction sets and IO.

Skills

C++
Python
Debugging

Education

Bachelor's in CS/CE/Math
MS/PhD in related field

Job description

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

As a Kernel Engineer on our team, you will develop high-performance software solutions at the intersection of hardware and software, developing high-performance software for cutting-edge AI and HPC workloads. Your focus will be on implementing, optimizing, and scaling deep learning operations to fully leverage our custom, massively parallel processor architecture.You will be part of a world-class team responsible for the design, performance tuning, and validation of foundational ML and HPC kernels. This includes building a library of parallel and distributed algorithms that maximize compute utilization and push the boundaries of training efficiency for state-of-the-art AI models. Your work will be critical to unlocking the full potential of our hardware and accelerating the pace of AI innovation.

Responsibilities

Develop design specifications for new machine learning and linear algebra kernels and mapping to the Cerebras WSE System using various parallel programming algorithms.Develop and debug kernel library of highly optimized low level assembly instruction and C-like domain specific language routines to implement algorithms targeting the Cerebras hardware system.Develop and debug high-performance kernel routines in low-level assembly and a custom C-like (CSL) language, implementing algorithms optimized for the Cerebras hardware system.Using mathematical models and analysis to measure the software performance and inform design decisions.Develop and integrate unit and system testing methodologies to verify correct functionality and performance of kernel libraries.Study emerging trends in Machine Learning applications and help evolve Kernel library architecture to address computational challenges of the start-of-the-art Neural Networks.Interact with chip and system architects to optimize instruction sets, microarchitecture, and IO of next generation systems.

Skills And Qualifications

Bachelor’s, Master’s, PhD or foreign equivalents in Computer Science, Computer Engineering, Mathematics, or related fields.Understanding of hardware architecture concepts — must be comfortable learning the details of a new hardware architecture.Skilled in C++ and Python programming languages.Good knowledge of library and/or API development best practices.Strong debugging s

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