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ML Model Serving Engineer

Sesame · San Francisco, California

Location
San Francisco, California, United States
Employment
Full time
Level
Mid level
Posted
18 months ago

About this role

About Sesame

Sesame believes in a future where computers are lifelike - with the ability to see, hear, and collaborate with us in ways that feel natural and human. With this vision, we're designing a new kind of computer, focused on making voice agents part of our daily lives. Our team brings together founders from Oculus and Ubiquity6, alongside proven leaders from Meta, Google, and Apple, with deep expertise spanning hardware and software. Join us in shaping a future where computers truly come alive.

Responsibilities:

  • Turbocharge our serving layer, consisting of a variety of LLM, speech, and vision models.

  • Partner with ML infrastructure and training engineers to build a fast, cost-effective, accurate, and reliable serving layer to power a new consumer product category.

  • Modify and extend LLM serving frameworks like VLLM and SGLang to take advantage of the latest techniques in high-performance model serving.

  • Work with the training team to identify opportunities to produce faster models without sacrificing quality.

  • Use techniques like in-flight batching, caching, and custom kernels to speed up inference.

  • Find ways to reduce model initialization times without sacrificing quality.

Required Qualifications:

  • Expert in some differentiable array computing framework, preferably PyTorch.

  • Expert in optimizing machine learning models for serving reliably at high throughput, with low latency.

  • Significant systems programming experience; ex. Experience working on high-performance server systems - you’d be just as comfortable with the internals of VLLM as you would with a complex PyTorch codebase.

  • Significant performance engineering experience; ex. Bottleneck analysis in high-scale server systems or profiling low-level systems code.

  • Always up to date on the latest techniques for model serving optimization.

Preferred Qualifications:

  • Familiarity with high-performance LLM serving; ex. experience with VLLM, SGlang deployment, and internals.

  • Experience with a public cloud platform such as GCP, AWS, or Azure.

  • Experience deploying and scaling inference workloads in the cloud using Kubernetes, Ray, etc.

  • You like to ship and have a track record of leading complex multi-month projects without assistance.

  • You’re excited to learn new things and work in a multitude of roles.

Sesame is committed to a workplace where everyone feels valued, respected, and empowered. We welcome all qualified applicants, embracing diversity in race, gender, identity, orientation, ability, and more. We provide reasonable accommodations for applicants with disabilities. Contact careers@sesame.com for assistance.

Full-time Employee Benefits:

  • 401 (k) max employer match: 3.5% of compensation

  • 100% employer-paid health, vision, and dental benefits for you and your dependents

  • Unlimited PTO and sick time

  • Flexible spending account with employer matching up to $1,650/year (medical FSA)

  • Guardian Employee Assistance Program (EAP)

  • Opportunity to share in the company's success with competitive stock options

Benefits do not apply to contingent/contract workers.

As published by Sesame. Applications are handled on their site.

Skills this posting mentions

Performance TuningCloud ServicesPyTorch

About Sesame

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Queue ML Model Serving Engineer and I read the posting, rewrite your resume against it, draft the cover letter, and score the fit. Then you press send, or press one button and I fill in Sesame’s form for you.

  1. 01Drop your resume

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Drop a resume or a LinkedIn URL. I rank the live openings against it, rewrite the resume and write a cover letter for the best of them, and fill in the employer's form when you press the button. You read, you decide what goes out.

  1. 01Drop your resume

    A PDF or a LinkedIn URL. About a minute, once.

  2. 02I rank the openings

    Every weekday morning, the live catalog scored against your history. Up to 20 worth your time, not two hundred links.

  3. 03Each one is written up

    Resume rewritten for the posting, a cover letter, a fit score. Press send, or let me fill in the form.

  • New matches ranked and written before you are up.
  • Every bullet stays inside what your history supports. Nothing invented.
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Listed from the job board Sesame publishes. Refolk is not the employer and does not handle their hiring. Applications go to Sesame directly.