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Senior ML Performance Engineer

Job in California, Moniteau County, Missouri, 65018, USA
Listing for: well-funded deeptech startup
Full Time position
Listed on 2026-07-08
Job specializations:
  • Software Development
    Machine Learning/ ML Engineer, AI Engineer (Applied/Software), AI Reliability/ Performance Engineer
Salary/Wage Range or Industry Benchmark: 200000 - 250000 USD Yearly USD 200000.00 250000.00 YEAR
Job Description & How to Apply Below
Location: California

Senior ML Performance Engineer | $200-250K salary + equity | Early-stage ML Infrastructure. 30-50 employees, $50MM+ in funding

We’re seeking a seasoned ML Performance Optimization Specialist to spearhead the development and deployment of high-performance, scalable ML inference pipelines for a key early-stage company. You’ll optimize model performance, reduce latency, and maximize throughput for some of the most innovative companies in the world.

Key Responsibilities
  • Model Optimization: Conduct in-depth performance profiling and analysis of ML models, identifying and eliminating bottlenecks.
  • Pipeline Engineering: Design and implement efficient ML inference pipelines, leveraging technologies like Tensor Flow Serving, Torch Serve, and NVIDIA Triton Inference Server.
  • Infrastructure Optimization: Collaborate with infrastructure teams to optimize hardware and software configurations for optimal ML performance, including GPU acceleration, distributed training, and model quantization.
  • Performance Benchmarking: Develop and maintain rigorous performance benchmarks to measure and track improvements.
  • Experimentation: Explore cutting‑edge techniques like model quantization, pruning, and knowledge distillation to further enhance performance.
Required Skills and Experience
  • Strong proficiency in Python and ML frameworks (Tensor Flow, PyTorch)
  • Deep understanding of ML algorithms and architectures
  • Expertise in performance optimization techniques (profiling, quantization, pruning, etc.)
  • Hands‑on experience with container orchestration platforms (Kubernetes)
  • Proficiency in cloud platforms (AWS, GCP, Azure)
  • Strong problem‑solving and analytical skills
Preferred Qualifications
  • Experience with ML hardware acceleration (GPUs, TPUs)
  • Knowledge of distributed training frameworks (Horovod, DDP)
  • Familiarity with MLIR and compiler optimization techniques

If you’re passionate about pushing the boundaries of ML performance and eager to work on cutting‑edge projects, we encourage you to apply.

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Position Requirements
10+ Years work experience
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