Member of Technical Staff | ML Systems
AI Summary
Builds and operates ML infrastructure and governance systems, including CUDA kernels, distributed training, data formats, experiment tracking, model registries, and release gates to ensure reproducible, governed model deployments.
About this role
About the role
At Avra, every technical IC is a Member of Technical Staff (MTS). The title doesn't put anyone in a silo: you own systems and outcomes, not steps in a function, and you keep building depth in your area. Seniority shows up in your scope, level, and compensation, not in titles.
In this role, you'll join our ML Systems team, which owns Avra's ML core and the governance of every model we ship. Research produces candidate models and evidence; you build the reliable path from data and training to a governed, reproducible release that can run in our cloud or in any customer environment. ML Systems is an internal platform: its users are our researchers and platform engineers, and its success is measured by the leverage it creates for them.
What you'll do
Build CUDA kernels and compute primitives for training and serving graph neural networks (GNNs).
Evolve Monad, our sampler and distributed-training library, including neighbor sampling and training performance.
Specify our binary data formats (Lance, Arrow, CSR/CSC), and own materializations and feature backfills for training and evaluation.
Define data contracts and consumption requirements with the teams that build our customer and proprietary datasets.
Build and operate experiment tracking, checkpoints, and evaluation infrastructure, with reproducibility by default.
Own the model registry, lineage, versioning, and compatibility across models, embeddings, and downstream models.
Define and run release gates, so every model running in production, batch, or on-premise maps to a governed release.
Make it possible to audit exactly which data, code, configuration, and evidence produced each release.
How we measure success
Time-to-experiment: how quickly a researcher goes from a hypothesis to materialized data, compute, and tracking.
Time-to-governed-release: how quickly a validated candidate becomes an authorized release.
Training throughput per GPU on our foundation model training runs.
100% of production models with complete release records and lineage — no ad hoc models in any environment.
Every release reproducible from its registered data, code, and configuration.
What we're looking for
Strong systems engineering skills and production-quality Python.
Experience with distributed training (e.g., Ray, PyTorch distributed) and multi-node GPU workloads.
Experience with columnar data formats and large-scale data materialization.
Familiarity with ML lifecycle tooling: experiment tracking, model registries, evaluation, and reproducibility.
A product mindset: you treat an internal platform as a product with real users. You don't need to be a data scientist.
Nice to have
CUDA kernel development or GPU performance optimization.
Graph neural networks or graph sampling at scale.
Lance, Arrow, or other columnar/indexed storage formats.
Multi-cloud GPU compute (e.g., SkyPilot).
Model governance or audit requirements in financial services or other regulated environments.
Skills
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