Software Engineer, ML Platform

Anysphere, Inc

$135K — $160K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years of experience in systems/infrastructure software engineering
  • Strong understanding of distributed systems and infrastructure
  • Experience in developing production-level systems at scale
  • Familiarity with Linux, cloud technologies, and orchestration tools (Kubernetes, Ray, etc.)
  • Ability to collaborate effectively with ML researchers and product engineers
  • Comfortable in high-ownership environments

Responsibilities

  • Design and build core platform systems for ML researchers and product engineers
  • Collaborate with research teams to translate pain points into infrastructure solutions
  • Ensure system reliability, performance, and developer experience
  • Iteratively ship improvements and measure their impact
  • Support ongoing operation of systems used daily by engineering teams

Benefits

  • Cozy in-person office environments in San Francisco and New York
  • Access to well-stocked libraries in the office
  • High-ownership work culture
  • Opportunities for direct impact on product development
  • Collaborative team environment with close interactions between roles
Full Job Description
Engineering • Full-time • San Francisco; New York
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About the role

As a Software Engineer on ML Platform at Cursor, you'll build the infrastructure that turns real product usage into better models - and keeps research moving fast on large GPU fleets. ML Platform is organized into four teams. Depending on your background, you may join any of them:
  • Telemetry - Own the collection and serving path that turns real product use into a record research can trust; without slowing the product, and under a small, explicit policy. Client-side or high-volume ingestion experience is a plus.
  • ML Data Platform - Build the shared environments and pipeline substrate researchers extend, so new experiments don't fork their own stack.
  • Observability - Make it easy for researchers to start, watch, and debug their own runs.
  • ML DevX and Systems - Shorten the path from idea to a trusted run on the research fleet.


We're looking for strong distributed-systems and infrastructure engineers who want to sit next to research and ship platform primitives that move the product.

We're in-person with cozy offices in North Beach, San Francisco, Palo Alto, and Manhattan, New York, complete with well-stocked libraries.

What you'll do
  • Design, build, and operate core platform systems used daily by ML researchers and product engineers
  • Partner closely with research to turn recurring pain into durable infrastructure
  • Own reliability, performance, and developer experience for the systems in your lane
  • Ship iteratively in a flat, high-ownership environment. Measure impact, then raise the bar


You may be a fit if
  • You have a strong background in systems / infrastructure software engineering and enjoy building platforms other engineers depend on
  • You've owned production distributed systems at meaningful scale (ingestion, data pipelines, scheduling/orchestration, or similar)
  • You're comfortable across Linux, cloud and/or bare metal, and modern orchestration (Kubernetes, Ray, or equivalent)
  • You like working closely with ML researchers and product engineers
  • You thrive where ownership is high and the feedback loop is short


Especially strong backgrounds by team
  • Telemetry: event ingestion, product analytics pipelines, OpenTelemetry / tracing, reliable data APIs
  • Product Data Platform: data frameworks, Spark / Flink / Ray, ML dataset and training-data infrastructure
  • Observability: experiment / run monitoring, debug and eval tooling, agent-friendly observability UX
  • ML DevX and Systems: GPU / cluster scheduling, job queues, node health, research compute developer experience


Applying

If there appears to be a fit, we'll reach out to schedule 2-3 short technicals. After, we'll schedule an onsite in our office, where you'll work on a small project, discuss ideas, and meet the team.

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