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Machine Learning Engineer
Relace · San Francisco · On Site · Active · Ashby
Job facts
| Field | Value |
|---|---|
| Company | Relace |
| Title | Machine Learning Engineer |
| Normalized title | - |
| Department / team | Model Training / Model Training |
| Location | San Francisco, CA, United States |
| Work model | On Site |
| Employment type | Full Time |
| Salary | - |
| Status | active |
| ATS provider | Ashby |
| Posted / first seen | — / 2026-05-29 |
| Changed / last seen | 2026-05-29 / 2026-06-06 |
Related slices
| Page | What it contains | Open |
|---|---|---|
| Company jobs | Active postings from Relace. | Open |
| Company breakdowns | Role, location, ATS, and work model facets for this company. | Open |
| ATS provider jobs | Active postings observed through Ashby. | Open |
| Provider filtered search | The same provider as a filtered job collection. | Open |
| City jobs | Active postings in San Francisco. | Open |
| Department jobs | Active postings in Model Training. | Open |
| Work model jobs | Active On Site postings. | Open |
| Lifecycle events | Open, update, close, and reopen events for this posting. | Open |
| Original posting | Canonical source or apply URL captured from the ATS. | Open |
Linked records
| Company | Relace |
| Source | e1fd1950-1869-4797-a5c0-a2288b4def37 |
| ATS provider | Ashby |
Description
About Us Relace is building the models and infrastructure that code agents reach for. We power the fastest model on OpenRouter (10,000 tok/s) and deliver optimized small language models designed for retrieval, application, and core code generation functions.
Our technology supports some of the world’s fastest-moving companies — including Lovable, Figma, and Vercel — as they deploy and scale code generation to hundreds of millions of users. We recently raised our Series A from a16z, and we’re growing quickly.
Our team is made up of mathematicians, physicists, and computer scientists who are deeply passionate about their craft. If you thrive on ambitious technical problems, care about elegant systems design, and want to build the foundation of how code gets written at scale, this is the place for you.
The Role We’re looking for a Machine Learning Engineer who loves getting close to the metal. This is a hands-on engineering role focused on making models faster, more efficient, and more reliable through low-level optimizations and smart systems design.
The ideal candidate is excited by CUDA kernels, memory layouts, GPU scheduling, and squeezing performance out of complex training and inference workloads. They should be just as comfortable optimizing compute and networking paths as they are working alongside research teams to productionize new architectures.
This is a role for someone who enjoys deep performance tuning, understands the realities of running large-scale ML systems, and thrives in fast-moving, high-leverage environments.
Requirements Strong background in systems-level ML engineering.
Experience with CUDA, GPU kernel optimization, and performance tuning.
Fluency in Python and at least one systems language (C++ or Rust preferred).
Familiarity with distributed training frameworks (e.g., PyTorch, JAX, DeepSpeed, or similar).
Experience working with large-scale training or inference infrastructure.
Understanding of memory management, parallelization, and hardware-aware model optimization.
2+ years of experience working in ML infrastructure or performance-critical environments.
Willingness to work in-person from our SF office in FiDi.
Full job record
| Job ID | f6ad7978b628b3a62955e058f46cd5fa611ccdec |
| Org ID | d7053216-462a-43ae-96e6-3ad7f2bc052e |
| Source ID | e1fd1950-1869-4797-a5c0-a2288b4def37 |
| Board ID | e1fd1950-1869-4797-a5c0-a2288b4def37 |
| Provider | ashby |
| Provider Job Key | 2deb110b-b848-4316-a120-f1864d788e94 |
| Title | Machine Learning Engineer |
| Normalized Title | — |
| Status | active |
| Active | yes |
| Location Text | San Francisco |
| Department | Model Training |
| Team | Model Training |
| Employment Type | full_time |
| Workplace Type | on_site |
| Remote Policy | — |
| Country | United States |
| Region | CA |
| City | San Francisco |
| Salary Raw | — |
| Salary Min | — |
| Salary Max | — |
| Salary Currency | — |
| Salary Period | — |
| Source URL | https://jobs.ashbyhq.com/relace/2deb110b-b848-4316-a120-f1864d788e94 |
| Apply URL | https://jobs.ashbyhq.com/relace/2deb110b-b848-4316-a120-f1864d788e94/application |
| First Seen At | 2026-05-29 06:52:58Z |
| Last Seen At | 2026-06-06 09:30:01Z |
| Last Checked At | 2026-06-06 09:30:01Z |
| Last Changed At | 2026-05-29 06:52:58Z |
| Inactive At | — |
| Source Posted At | — |
| Source Updated At | — |
| Raw Payload Uri | s3://job-postings-prod-raw-590183727216/raw/provider=ashby/board=relace/date=2026-06-06/2026-06-06T09-29-57-713Z-2bbac8757a9bf0430ea76634646f5887abe9b1a9a3ef98417a5bcc30e4d74d79.json |
Event Fields
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