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Member of Technical Staff - ML Performance

Posted 3 months ago

OfficeNew YorkSE150k - 350k USD

About Us:

Modal provides the infrastructure foundation for AI teams. With instant GPU access, sub-second container startups, and native storage, Modal makes it simple to train models, run batch jobs, and serve low-latency inference. We have thousands of customers who rely on us for production AI workloads, including Lovable, Scale AI, Substack, and Suno.

We're a fast-growing team based out of NYC, SF, and Stockholm. We've hit 9-figure ARR and recently raised a Series B at a $1.1B valuation. Our investors include Lux Capital, Redpoint Ventures, Amplify Partners, and Elad Gil.

Working at Modal means joining one of the fastest-growing AI infrastructure organizations at an early stage, with many opportunities to grow within the company. Our team includes creators of popular open-source projects (e.g. Seaborn, Luigi), academic researchers, international olympiad medalists, and experienced engineering and product leaders with decades of experience.

The Role

We are looking for strong engineers with experience in making ML systems performant at scale. If you are interested in contributing to open-source projects and Modal’s container runtime to push language and diffusion models towards higher throughput and lower latency, we’d love to hear from you!

Requirements

  • 5+ years of experience writing high-quality, high-performance code.

  • Experience working with torch, high-level ML frameworks, and inference engines (vLLM or TensorRT).

  • Familiarity with Nvidia GPU architecture and CUDA.

  • Experience with ML performance engineering (tell us a story about boosting GPU performance — debugging SM occupancy issues, rewriting an algorithm to be compute-bound, eliminating host overhead, etc).

  • Nice-to-have: familiarity with low-level operating system foundations (Linux kernel, file systems, containers, etc).

Job details
Workplace
Office
Location
New York
Experience
SE
Salary
150k - 350k USD
per year

Bring your own code, and run CPU, GPU, and data-intensive compute at scale. The serverless platform for AI and data teams.

Employees
153
Industry
Software Development
Headquarters
New York City, New York
Company location
New York City, New York 10038, US
Specialties
Serverless GPUs, LLM Inference, LLM Fine-Tuning, Generative Model Inference, Generative Model Training, Computational Biology, Audio Generation, Image Generation, Video Generation, Web Scraping, Batch Jobs, Batch Embeddings, and Scaling Out

Key team members

Joshua G

Joshua G

Martin Sandberg

Martin Sandberg

Pär Johansson

Pär Johansson

Daniel Norberg

Daniel Norberg

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