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Vacantes / Scaleai

Senior Software Engineer, Platform

Scaleai · San Francisco, CA; New York, NYsenior

En corto

  • ▸Ingeniero de plataformas senior que construye sistemas centrales para IA de gran escala.
  • ▸Diseña infraestructura en la nube, orquestación y pipelines de CI/CD para soportar modelos de lenguaje a escala global.
  • ▸Destaca la exposición directa al frente de la revolución de IA, donde tu trabajo impacta en la seguridad y alineación de modelos como ChatGPT.

Profiencia en inglés para trabajar en un entorno global, con reuniones y documentación en

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¿Qué piden?

  • ✓3+ años de experiencia en ingeniería tras graduarse con enfoque en sistemas backend.
  • ✓Experiencia profunda en sistemas distribuidos y plataformas en la nube (AWS preferido).
  • ✓Demostrado liderazgo en proyectos de ingeniería completos de forma autónoma.
  • ✓Capacidad de comunicar ideas técnicas complejas a no técnicos.
  • ✓Experiencia con Kubernetes, Terraform, Docker y otras tecnologías de contenedores y despliegue.
  • ✓Conocimiento en orquestación con Temporal o AWS Step Functions.

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AWSKubernetesTerraformDockerTemporalAWS Step FunctionsMongoDBPostgresCircleCIDagster

¿A quién escribirle en Scaleai?

Tu dossier gratis identifica a las personas que te entrevistarían — con su background, qué valoran y cómo escribirles para destacar antes de aplicar.

Software is eating the world, but AI is eating software. We live in unprecedented times – AI has the potential to exponentially augment human intelligence. Every person will have a personal tutor, coach, assistant, personal shopper, travel guide, and therapist throughout life. As the world adjusts to this new reality, leading platform companies are scrambling to build LLMs at billion scale, while large enterprises figure out how to add it to their products. To make them safe, aligned and actually useful, these models need human eval and reinforcement learning through human feedback (RLHF) during pre-training, fine-tuning, and production evaluations. This is the main innovation that’s enabled ChatGPT to get such a large headstart among competition. At Scale, our products include the Generative AI Data Engine, SGP, Donovan, and others that power the most advanced LLMs and generative models in the world through world-class RLHF, human data generation, model evaluation, safety, and alignment. The data we are producing is some of the most important work for how humanity will interact with AI. At the foundation of these products is the Platform Engineering team. In this role, you will support the design and development of shared platforms used across Scale. This includes designing our foundational data platforms and lifecycle, architecting Scale’s core cloud infrastructure and orchestration stack, and redefining how engineers develop, build, test, and deploy software at Scale. You’ll also get widespread exposure to the forefront of the AI race as Scale sees it in enterprises, startups, governments, and large tech companies. You will: • Drive the design, and implementation of our foundational platforms and systems, working closely with stakeholders and internal customers to understand and refine requirements. • Collaborating with cross-functional teams to define, design, and deliver new features. • Proactively identifying opportunities for, and driving improvements to, current programming practices, including process enhancements and tool upgrades. • Presenting technical information to teams and stakeholders, providing guidance and insight on development processes and technologies. Ideally you’d have: • 3+ years of full-time engineering experience, post-graduation with specialities in back-end systems. • Extensive experience in software development and a deep understanding of distributed systems and public cloud platforms (AWS preferred). • Show a track record of independent ownership of successful engineering projects. • Possess excellent communication and collaboration skills, and the ability to translate complex technical concepts to non-technical stakeholders. • Experience working fluently with standard containerization & deployment technologies like Kubernetes, Terraform, Docker, etc. • Experience with orchestration platforms, such as Temporal and AWS Step Functions. • Experience with NoSQL document databases (MongoDB) and structured databases (Postgres). • Strong knowledge of software engineering best practices and CI/CD tooling (CircleCI). Nice to haves: • Experience with data warehouses (Snowflake, Firebolt) and data pipeline/ETL tools (Dagster, dbt). • Experience with authentication/authorization systems (Zanzibar, Authz, etc.) • Experience scaling products at hyper-growth startups. • Excitement to work with AI technologies. Compensation packages at Scale for eligible roles include base salary, equity, and benefits. The range displayed on each job posting reflects the minimum and maximum target for new hire salaries for the position and may be inclusive of several career levels at Scale; it will be determined during the interview process based on

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