hirly

Sunday

ML Infrastructure Engineer

Redwood City, CA

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Seniority
Mid level
Country
US
Work mode
Remote-friendly
First seen by hirly
2 Sept 2026

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the posting

Join Us in Building the Future of Home Robotics

At Sunday, we're developing personal robots to reclaim the hours lost to repetitive tasks. We're focused on an ambitious goal to make generalized robots broadly accessible, enabling households to take back quality time.

We have spent the last 18 months building a talented team, securing capital, and validating our technology. We are now seeking passionate individuals to join us in the next phase of our growth. If you are ready to apply your skills to the forefront of robotics innovation, we’d love to hear from you.

The Role

Sunday Robotics is building the future of home robotics. We're developing end-to-end ML models for robot manipulation, and you'll have the opportunity to build and shape foundational systems that directly accelerate our path to putting robots in homes.

This is a broad role that can be tailored to your specific area of expertise: data pipelines, training infrastructure or inference. You'll build systems across the full robot learning pipeline: ingesting and processing multimodal data, scaling distributed training, optimizing inference for real-time control and building research tooling.

What You'll Do

Training and Inference Infrastructure

Maintain an effective research codebase with good ergonomics, optimizing for fast iteration and correctness

Own infrastructure for model training: job scheduling, checkpointing, metrics, and logging

Scale distributed training across GPU clusters with minimal researcher friction

Enable training of larger models through sharding, activation checkpointing and memory optimization

Profile and optimize gpu utilization, memory usage and training throughput

Build low-latency inference pipeline for real-time robot control, apply quantization, distillation and model compilation to optimize inference performance

Work closely with researchers and roboticists to translate research needs into reliable software and infrastructure

Data Pipelines and Research Tooling

Design high-throughput pipelines for ingesting, validating, and transforming multimodal robot data (video, proprioception, actions)

Build storage systems and metadata indexing for efficient dataset management at large scale

Optimize dataloaders, sharding and prefetching to minimize time from data arrival to model training

Build research tooling for debugging, visualization and experiment analysis

What We're Looking For

Strong software engineering and systems fundamentals

Experience building distributed systems or large-scale data pipelines

Hands-on experience with ML training infrastructure, ideally PyTorch

Comfort reasoning about performance, memory, I/O, and GPU utilization

Experience managing training workloads (SLURM, Kubernetes, or similar)

Ownership mindset: you design, build, operate, and iterate on systems end-to-end

Enjoy working closely with researchers and unblocking fast-moving projects

Nice to Have

Experience with robotics data pipelines or multimodal models

Background in VLAs, Video Generation architectures or robot learning systems

Deep ML systems experience: training compilers, custom kernels, runtime optimization

Hands-on GPU performance tuning

Experience with serialization formats for high-performance systems (Protobuf, FlatBuffers, MCAP)

At Sunday Robotics, we’re building technology shaped by real people — curious, creative, and diverse. We’re proud to be an equal opportunity employer and consider all qualified applicants regardless of race, color, religion, gender, gender identity or expression, sexual orientation, national origin, genetics, disability, age, or veteran status.

Even if you don’t meet every single requirement, we encourage you to apply. Studies show that women and underrepresented groups often hold back unless they meet 100% of the criteria — we don’t want that to be the reason we miss out on great talent.

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ML Infrastructure Engineer at Sunday — hirly