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Vacantes / Nuro

Senior Software Engineer, ML Infrastructure Platform

Nuro · Mountain View, California (HQ)senior

En corto

  • ▸Ingeniero de software senior especializado en infraestructura de ML para conducción autónoma.
  • ▸Diseña y opera pipelines de entrenamiento a gran escala, orquestación en Kubernetes y observabilidad de sistemas distribuidos.
  • ▸Destaca por su enfoque en fiabilidad operativa y mejora continua de costos y rendimiento en entornos de producción.

No se requiere inglés, pero el puesto se presenta en inglés.

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¿Qué piden?

  • ✓Licenciatura, maestría o doctorado en Ciencias de la Computación, Ingeniería Eléctrica o campo relacionado.
  • ✓3+ años de experiencia relevante en ingeniería de software o infraestructura.
  • ✓Experiencia práctica con Kubernetes en entornos de producción.
  • ✓Dominio de Python y confort con lenguajes de sistemas como C++ o Go.
  • ✓Fundamentos sólidos en sistemas distribuidos y razonamiento sobre rendimiento y fallos.
  • ✓Mindset de propiedad: diseño de monitoreo, alertas y procedimientos de respuesta a incidentes.

¿No cumplís todo? Es lo normal — tu dossier gratis te dice qué gaps tenés y cómo cubrirlos en la entrevista.

PythonC++GoKubernetesGCPGPUNCCLcollective communicationML workflowsobservability

¿A quién escribirle en Nuro?

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Who We Are Nuro believes self-driving vehicles are the most immediate and profound opportunity for AI to drive positive change in the physical world. Safer streets, more time for what matters, and easier access to the world around us, that’s why we’re building a universal autonomy platform: self-driving for all roads and all rides. Founded in 2016, Nuro is a physical AI company developing Level 4 autonomous driving technology for a wide range of vehicles, use cases, and markets. Powered by the Nuro Driver™, our universal autonomy platform enables the global mobility ecosystem to deploy autonomy at scale, from robotaxis and logistics fleets to personal vehicles. With years of real-world deployment experience and a flexible, partner-led business model, Nuro is working toward a future where millions of autonomous vehicles powered by our technology help make everyday life safer, easier, and more connected. Nuro has raised over $2B in capital from Uber, NVIDIA, Google, Softbank, Fidelity, T. Rowe Price, and other leading investors About the Role Nuro takes a machine-learning-first approach to autonomous driving, and the ML Infrastructure team builds and operates the infrastructure that makes that possible. We own the systems that train the models at the core of the Nuro Driver™ - from distributed GPU training and closed-loop reinforcement learning, to the workflows, orchestration, observability, and cost management that keep the fleet running efficiently. Our work sits directly on the critical path of autonomy development. When a training run stalls, when a pipeline silently regresses, or when GPU utilization slips, it shows up in how fast the rest of the company can ship. We care as much about reliability and operational maturity as we do about raw scale. About the Work • Contribute to Nuro’s training infrastructure, spanning multi-generation accelerators, and multi-cluster scheduling and orchestration. • Design and operate large-scale data pipelines - batch and streaming ingestion, storage layout, and high-throughput data generation and storage. • Design and develop agentic-first ML workflows - data-to-training-to-evaluation pipelines that are introspectable, reproducible, and easy for autonomy teams to run and extend. • Own reliability for critical training and release pipelines: instrument them, define meaningful alerting, and build the on-call and incident-response practices that let the team catch regressions. About You • BS, MS, or PhD in Computer Science, Electrical Engineering, or a closely related field, plus 3+ years of relevant work experience. • Willingness to deep-dive into implementation and to raise the technical and operational standards of the broader engineering organization. • A demonstrated ownership mindset: you drive systems to operational maturity e.g. through monitoring, alerting, runbooks. • Strong proficiency in Python (and comfort with C++, Go or a similar systems language). • Hands-on experience running production infrastructure on Kubernetes. • Solid distributed-systems fundamentals and the ability to reason about performance, failure modes, and reliability across a complex system. Bonus Points • Strong working knowledge of GCP. • Experience with building large-scale data generation pipelines. • Experience with Kubernetes-native orchestration for ML workloads. • Depth in GPU / distributed training internals, including NCCL and collective communication. • Familiarity with GPU and training observability tooling and using it to diagnose real bottlenecks. • A track record of driving down infrastructure cost while improving reliability. At Nuro, your base pay is one part of your to

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