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Jobs / Reddit

Staff Machine Learning Engineer, Ads ML Efficiency

Reddit·Remote - United StatesRemotesenior

In short

  • →Diseñar y construir infraestructura de ML escalable para optimizar entrenamiento e inferencia.
  • →Trabajar en sistemas distribuidos con enfoque en rendimiento, costos y uso eficiente de GPU.
  • →Destacar por mejorar la productividad de ingenieros de ML a través de herramientas y plataformas internas.

Proficiency in English required

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The questions they'll ask you

1. ¿Cómo has optimizado el uso de GPU en un entorno de entrenamiento distribuido?

2. Describe un sistema de monitorización que hayas construido para modelos de inferencia en tiempo real.

3. ¿Qué métricas usas para evaluar el rendimiento de un pipeline de entrenamiento de ML?

🔒 +7 more questions

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💵 USD · Remote · No visa

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What they ask for

  • ✓5+ años de experiencia en ingeniería de software
  • ✓Dominio de Python
  • ✓Experiencia en sistemas distribuidos a gran escala
  • ✓Conocimiento en infraestructura de ML, entrenamiento o servidores de modelos
  • ✓Habilidades avanzadas en depuración y análisis de rendimiento
  • ✓Proficiencia en al menos un lenguaje de sistemas (Go, C++, Rust, Java)

Don't tick every box? That's normal — your free dossier shows your gaps and how to cover them in the interview.

PythonGoC++RustJavaPyTorch DistributedRayTensorFlowSparkGPU architectures

Who should you write to at Reddit?

Your free dossier identifies the people who'd interview you — their background, what they value, and how to reach out so you stand out before applying.

Reddit is a community of communities. It’s built on shared interests, passion, and trust, and is home to the most open and authentic conversations on the internet. Every day, Reddit users submit, vote, and comment on the topics they care most about. With 100,000+ active communities and approximately 130 million daily active unique visitors, Reddit is one of the internet’s largest sources of information. For more information, visit www.redditinc.com . Location: Reddit has a flexible first workforce. Don't live near our office? No worries: you can work remotely from anywhere in the US or Canada. About the Team The ML Efficiency team builds the infrastructure, tooling, and optimization systems that enable machine learning engineers and researchers to train, evaluate, deploy, and operate models efficiently at scale. We focus on improving developer productivity, reducing infrastructure costs, increasing hardware utilization, and accelerating experimentation across the company’s ML ecosystem. Responsibilities • Design and build systems that improve the efficiency of ML training and inference workloads. • Develop tooling that helps ML engineers debug, profile, optimize, and monitor model performance. • Improve GPU and general resource utilization through scheduling, resource management, caching, and workload optimization. • Partner with ML researchers and product teams to identify bottlenecks and drive performance improvements. • Build benchmarking frameworks and performance dashboards for training and serving systems. • Optimize distributed training infrastructure, data pipelines, and model serving architectures. • Lead cross-functional initiatives that improve the productivity of Reddit ML engineers. • Drive technical strategy for ML platform scalability, reliability, and cost efficiency. Qualifications Required • BS, MS, or PhD in Computer Science or a related field. • 5+ years of software engineering experience. • Strong proficiency in Python • Profiency in at least one systems language (Go, C++, Rust, or Java) preferred • Experience building distributed systems at scale. • Experience with machine learning infrastructure, training systems, or model serving platforms. • Deep understanding of performance engineering and systems optimization. • Strong debugging and profiling skills. Preferred • Experience with large-scale recommendation, ranking, generative AI, or foundation model systems. • Experience with distributed training frameworks such as PyTorch Distributed, Ray, Tensorflow, Spark • Familiarity with GPU architectures and performance analysis tools. • Experience optimizing cloud infrastructure costs across large ML workloads. • Contributions to internal platforms used by multiple ML teams. • Experience with building real time ML inference applications What Success Looks Like • ML engineers can move from idea to experiment faster. • Training and inference costs decrease, performance increases, while model quality is maintained or improved. • GPU utilization an

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