Distributed LLM Inference Engineer

Reposted 3 Days Ago
Be an Early Applicant
2 Locations
Hybrid
170K-245K Annually
Mid level
Artificial Intelligence • Software
The Role
The role focuses on optimizing ML inference at scale, collaborating with product teams, integrating Ray Data, and enhancing open-source contributions.
Summary Generated by Built In

About Anyscale

At Anyscale, we're on a mission to democratize distributed computing and make it accessible to software developers of all skill levels. We’re commercializing Ray, a popular open-source project that's creating an ecosystem of libraries for scalable machine learning. Companies like OpenAI, Uber, Spotify, Instacart, Cruise, and many more, have Ray in their tech stacks to accelerate the progress of AI applications out into the real world.


With Anyscale, we’re building the best place to run Ray, so that any developer or data scientist can scale an ML application from their laptop to the cluster without needing to be a distributed systems expert.


Proud to be backed by Andreessen Horowitz, NEA, and Addition with $250+ million raised to date.


About the role

As a Distributed LLM Inference Engineer, you will help systems and optimizations that push the boundaries of performance for inference at large scale. This is an incredibly critical role to Anyscale as it allows us to achieve a market leading position for  AI infrastructure.

As part of this role, you will

  • Iterate very quickly with product teams to ship the end to end solutions for Batch and Online inference at high scale which will be used by open-source Ray users and customers of Anyscale

  • Work across the stack integrating Ray Data and LLM engine providing optimizations achieving low cost solutions for large scale ML inference 

  • Integrate with Open source software like vLLM, work closely with the community to adopt these techniques in Anyscale solutions, and also contribute improvements to open source

  • Follow the latest state-of-the-art in the open source and the research community, implementing and extending best practices

We'd love to hear from you if you have

  • Familiarity with running ML inference at large scale with high throughput and low latency

  • Familiarity with deep learning and deep learning frameworks (e.g. PyTorch)

  • Solid understanding of distributed systems, ML inference challenges

Bonus points!

  • ML Systems knowledge

  • Experience using Ray 

  • Work closely with community on LLM engines like vLLM, TensorRT-LLM

  • Contributions to deep learning frameworks (PyTorch, TensorFlow)

  • Contributions to deep learning compilers (Triton, TVM, MLIR)

  • Prior experience working on GPUs / CUDA

Compensation

At Anyscale, we take a market-based approach to compensation. We are data-driven, transparent, and consistent.  As the market data changes over time, the target salary for this role may be adjusted.

This role is also eligible to participate in Anyscale's Equity and Benefits offerings, including the following:

  • Stock Options

  • Healthcare plans, with premiums covered by Anyscale at 99% for both employees and dependents

  • 401k Retirement Plan

  • Education & Wellbeing Stipend

  • Paid Parental Leave

  • Fertility Benefits

  • Paid Time Off

  • Commute reimbursement

  • 100% of in-office meals covered

Anyscale Inc. is an Equal Opportunity Employer. Candidates are evaluated without regard to age, race, color, religion, sex, disability, national origin, sexual orientation, veteran status, or any other characteristic protected by federal or state law. 

Anyscale Inc. is an E-Verify company and you may review the Notice of E-Verify Participation and the Right to Work posters in English and Spanish

Skills Required

  • Familiarity with running ML inference at large scale with high throughput and low latency
  • Familiarity with deep learning and deep learning frameworks
  • Solid understanding of distributed systems, ML inference challenges

Anyscale Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Anyscale and has not been reviewed or approved by Anyscale.

  • Fair & Transparent Compensation Pay is considered market-based with target ranges shown in postings and a stated market-based philosophy. Feedback suggests this clarity and consistency aid confidence in pay fairness.
  • Equity Value & Accessibility Equity is commonly included in offers and is positioned as a meaningful part of total compensation for many roles. Feedback suggests this equity participation enhances perceived overall pay competitiveness.
  • Healthcare Strength Health, dental, and vision coverage are described as robust with many plan options, alongside mental-health support and fertility benefits. Feedback suggests this strong core healthcare offering increases perceived benefits quality.

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The Company
HQ: San Francisco, CA
115 Employees
Year Founded: 2019

What We Do

Distributed computing made simple Anyscale enables developers of all skill levels to easily build applications that run at any scale, from a laptop to a data center.

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