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Post-Training Research Engineer
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Baseten·San Francisco·23 мар.

Post-Training Research Engineer

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Наша компания

Baseten powers mission-critical inference for the world's most dynamic AI companies, like Cursor, Notion, OpenEvidence, Abridge, Clay, Gamma and Writer. By uniting applied AI research, flexible infrastructure, and seamless developer tooling, we enable companies operating at the frontier of AI to bring cutting-edge models into production. We're growing quickly and recently raised our $1.5B Series F led by Altimeter Capital, Conviction Partners, and Spark Capital. Join us and help build the platform engineers turn to to ship AI products. We are looking for an engineer with strong experience in machine learning and solid foundations in maths and computer science to join our growing Post-Training team at Baseten. Custom models are instrumental to the success of Baseten customers. By inference volume, the overwhelming majority of traffic at Baseten is to and from models that have been post-trained in some way, whether that be through reinforcement learning, supervised finetuning, a recent technique from the literature, or an in-house research technique from Baseten. The Post-Training team is responsible for the success of our customers’ post-trained models, and we employ a wide array of techniques to produce models that are more efficient and higher quality than even the biggest closed source models for the customer’s specific needs. Your role as a research engineer is to build the in-house tooling to support all of this. We care about training a wide spectrum of different model architectures with a variety of techniques efficiently and at scale. At times this involves zooming deep into a particular technical topic, but more often if involves working across the stack as a whole - systems-level concepts like Kubernetes, cgroups, storage systems, and networking topologies, as well as PyTorch distributed tensor computation, and GPU kernels.

Наши требования

A deep understanding of modern ML techniques and tools for training transformers
Advanced experience in a tensor/array computation library like PyTorch, TensorFlow, Jax, or similar
A detailed understanding of transformer training parallelism strategies like data parallelism, sharded data parallelism, tensor parallelism, pipeline parallelism, context parallelism
The experience and knowledge to profile and improve the performance of a distributed GPU program in PyTorch or a similar library
The ability to perform roofline analysis on a transformer training setup
A willingness to dive into messy problems, work with researchers, derive specifications by asking important questions, and execute
Familiarity with HPC and distributed computing platforms like Slurm, Ray, Kubernetes, and Dask
Familiarity with cluster networking technology like Infiniband, RoCE, GPUDirect
Solid fundamentals in operating systems concepts like processes, files, kernel drivers, containerisation, and networking protocols
A sense of creativity and willingness to ask difficult questions about our approach, assumptions, and tooling choices

Мы предлагаем

Competitive compensation, including meaningful equity
100% coverage of medical, dental, and vision insurance for employee and dependents
Flexible PTO policy including company wide Winter Break (our offices are closed from Christmas Eve to New Year's Day!)
Paid parental leave
Fertility and family-building stipend through Carrot
Company-facilitated 401(k)
Exposure to a variety of ML startups, offering unparalleled learning and networking opportunities

Дополнительно

Repeated kv cache for long-running agents
Distillation without the dark – replicating black-box on-policy distillation on Baseten
B
Baseten
San Francisco

ГрейдMiddle
ЗанятостьПолная занятость
РегионСША
ФорматОфис
ИсточникСкрыто
Опубликовано23 мар.
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