Senior ML Performance Engineer

Posted Yesterday
Hiring Remotely in Cañada De Pala, CA, USA
In-Office or Remote
Senior level
Artificial Intelligence • Machine Learning • Software
The Role
Design and build a performance testing platform for LLM inference on GPU clusters. Define benchmarks and metrics, run automated validation pipelines, profile GPU workloads, establish baselines, validate compiler optimizations, and deliver dashboards and documentation while collaborating with compiler, ML, and DevOps teams.
Summary Generated by Built In
About Us

At Lemurian Labs, we're reimagining the foundations of computing to make AI accessible to everyone. Our mission is to remove the limits of scale, hardware, and cost that hold back innovation, so the people solving humanity's hardest problems can move faster.

We're building a new kind of software stack: a hardware-agnostic platform that makes every system — from a laptop to a supercomputer — feel like one seamless engine. Developers can write once, run anywhere, and get state-of-the-art performance across any chip, any cloud, at any scale. It's a complete rethink of how software and hardware interact — designed for the era beyond Moore's Law.

We're not looking for the comfortable or the conventional; we're looking for the bold. The engineers who crave frontier problems, who want to bend the limits of what's possible, who see infrastructure not as a constraint but as a canvas. If you want to build the foundation for the next era of AI and change what humanity can achieve in the process, join us.

About the Role

We're looking for a Senior ML Performance Engineer to architect and lead our Performance Testing Platform from the ground up. You'll be the technical authority on how we measure, validate, and optimize the performance of large language models — including Llama 3.2 70B, DeepSeek, and others — before and after compiler optimization on modern GPU architectures.

This is a high-impact role at the intersection of ML systems, GPU architecture, and performance engineering. You'll build the infrastructure that proves our compiler delivers real, measurable value — and you'll work directly with compiler and ML engineers to drive the optimizations that get us there.

What You'll Do
  • Design and build a comprehensive performance testing platform for evaluating LLM inference workloads across GPU clusters
  • Define and implement the benchmarking methodology, metrics, and test suites that measure latency, throughput, memory utilization, power consumption, and model accuracy
  • Establish baseline performance for unoptimized models (Llama 3.2 70B, DeepSeek, etc.) and validate post-optimization improvements
  • Develop automated testing pipelines for continuous performance validation across compiler releases and model updates
  • Investigate performance bottlenecks using profiling tools (ROCm profilers, GPU traces, system-level monitoring) and work with the compiler team to drive optimizations
  • Create dashboards and reporting that provide clear visibility into performance trends, regressions, and wins
  • Collaborate cross-functionally with compiler engineers, ML engineers, and DevOps to ensure performance testing is integrated into our development workflow
  • Document best practices for performance testing and optimization of ML workloads on GPU hardware
Essential Skills and Experience:
  • BS degree in computer science, computer engineering, electrical engineering, or equivalent practical experience
  • 7+ years of experience in performance engineering, benchmarking, or systems engineering roles
  • Deep understanding of ML inference workloads, particularly transformer-based models and LLMs
  • Hands-on experience with GPU programming and optimization (CUDA, ROCm, or similar)
  • Strong programming skills in Python and C/C++
  • Proven track record of building performance testing infrastructure or benchmarking platforms from scratch
  • Experience with ML frameworks (PyTorch, TensorFlow, ONNX Runtime, vLLM, TensorRT-LLM, etc.)
  • Proficiency with profiling and debugging tools for GPU workloads
  • Strong analytical skills with the ability to design experiments, analyze results, and communicate findings clearly
  • Experience with CI/CD systems and test automation frameworks
Preferred Skills and Experience:
  • Masters or PhD degree in computer science, computer engineering, electrical engineering, or equivalent practical experience.
  • Experience with AMD GPUs (Mi200/Mi300 series) and ROCm ecosystem
  • Knowledge of compiler optimization techniques and their impact on performance
  • Experience with distributed inference and multi-GPU workloads
  • Familiarity with ML model quantization, pruning, and other optimization techniques
  • Background in high-performance computing or systems-level optimization
  • Experience with infrastructure-as-code (Kubernetes, Docker, Terraform)
  • Contributions to open-source ML or systems projects
Personal Attributes
  • Precision-driven: you catch the 2% regression that others miss.
  • Self-directed: you take ownership and don't wait for permission to solve problems.
  • Collaborative: you work well across teams and actively help others succeed.
  • Clear communicator: you can explain complex technical concepts to engineers and stakeholders alike.
Why Join Lemurian Labs
  • Build the performance testing infrastructure that validates the future of efficient AI.
  • Own a high-visibility platform that directly influences product quality and customer success.
  • Work with cutting-edge GPU hardware and next-generation LLMs.
  • Competitive compensation including equity, medical/dental/vision, retirement savings, and wellness benefits.

Lemurian Labs is an equal opportunity employer. We celebrate diversity and are committed to creating an inclusive environment for all employees, regardless of gender identity, race, ethnicity, sexual orientation, disability status, age, or background.

Compensation depends on experience and geographic location and will be narrowed during the interview process. Additional benefits include equity, company bonus opportunities, medical, dental, and vision coverage, a retirement savings plan, and supplemental wellness benefits.

Skills Required

  • BS degree in computer science, computer engineering, electrical engineering, or equivalent practical experience
  • 7+ years of experience in performance engineering, benchmarking, or systems engineering roles
  • Deep understanding of ML inference workloads, particularly transformer-based models and LLMs
  • Hands-on experience with GPU programming and optimization (CUDA, ROCm, or similar)
  • Strong programming skills in Python and C/C++
  • Proven track record of building performance testing infrastructure or benchmarking platforms from scratch
  • Experience with ML frameworks (PyTorch, TensorFlow, ONNX Runtime, vLLM, TensorRT-LLM, etc.)
  • Proficiency with profiling and debugging tools for GPU workloads (ROCm profilers, GPU traces, system-level monitoring)
  • Experience with CI/CD systems and test automation frameworks
  • Strong analytical skills with ability to design experiments, analyze results, and communicate findings
  • Masters or PhD in CS/CE/EE or equivalent practical experience
  • Experience with AMD GPUs (Mi200/Mi300 series) and ROCm ecosystem
  • Knowledge of compiler optimization techniques and their impact on performance
  • Experience with distributed inference and multi-GPU workloads
  • Familiarity with ML model quantization, pruning, and optimization techniques
  • Background in high-performance computing or systems-level optimization
  • Experience with infrastructure-as-code (Kubernetes, Docker, Terraform)
  • Contributions to open-source ML or systems projects
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The Company
HQ: Toronto
33 Employees
Year Founded: 2018

What We Do

At Lemurian Labs our focus is on unleashing the capabilities of AI for the benefit of humanity. To fulfill this purpose we are developing a full stack solution consisting of software and hardware that is capable of orders of magnitude better performance and efficiency than legacy solutions, while being designed for scalability. There are massive shifts underway moving us from Software 1.0 to Software 2.0 to Software 3.0 and onwards, but to realize its true benefits we need fundamentally new hardware and systems that can keep up with the changing compute demands and simultaneously bringing down costs. We are developing software and hardware designed from first principles to deliver unprecedented realizable performance/watt and enable the next generation of AI workloads. Our diverse team of technologists have decades of experience at the frontiers of high performance computing, digital arithmetic, cryptography, artificial intelligence, robotics, and networking. There is a lot of talk about what the technology of tomorrow will look like and there are a number of companies developing it. At Lemurian, we believe tomorrow is so yesterday. We are developing the technology for the day after tomorrow. We are Lemurian Labs. Welcome to the future of artificial intelligence and computing.

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