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Vacantes / Cortea AI

Senior/Staff Platform Engineer (m/f/x)

Cortea AI · Berlinsenior

En corto

  • ▸Ingeniero de plataforma sénior que define arquitectura y primitivas compartidas para sistemas de IA a gran escala.
  • ▸Trabaja directamente en código de aplicación, no solo en configuración de infraestructura, con enfoque en fiabilidad, seguridad y eficiencia.
  • ▸Destaca que se espera una comprensión profunda del sistema en la cabeza del ingeniero, no solo dependencia de IA para decisiones.

Proficiency in English is required for documentation and collaboration.

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¿Qué piden?

  • ✓Experiencia end-to-end construyendo sistemas desde cero hasta producción.
  • ✓Capacidad para establecer arquitectura y primitivas reutilizables que guíen a otros ingenieros.
  • ✓Conocimiento sólido en Kubernetes, infraestructura como código y observabilidad de sistemas.
  • ✓Experiencia con diseño de SLOs, SLIs y alertas de alta señal.
  • ✓Capacidad para explicar y defender decisiones técnicas con rigor.
  • ✓Dominio de seguridad por defecto: IAM, gestión de secrets, ReBAC y cumplimiento (SOC 2, ISO 27001).

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

KubernetesInfraestructura como códigoCI/CDGrafanaPrometheusOpenTelemetryIAMReBACSecrets managementCloud (AWS/GCP/Azure)

¿A quién escribirle en Cortea AI?

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

Your Role We ship fast, and we intend to keep shipping fast. The consequence is that our system is outgrowing the amount of deliberate design that went into it. We run AI agents over customer documents in a domain where being wrong is expensive, and a lot of the load-bearing decisions about how those fit together are still implicit. You will be making those decisions explicit and then making them hold. That means codifying golden paths, building the shared primitives and APIs that product engineers work on top of, owning the architecture of the system as a whole, and establishing what our reliability actually needs to be before an incident establishes it for us. Platform at Cortea sits between software engineering, DevOps and SRE. Its customers are other engineers. This is not a DevOps role under a different name: you will spend more time in application code than in YAML, and the reason we want infrastructure experience is that we don't believe you can design a system well without being able to run it. The bar we are hiring against is someone who has taken a system from nothing to production and owned it end to end. You picked the technology, argued the tradeoffs in writing, provisioned the infrastructure, and were responsible for it when it broke. On AI We use AI heavily and we want you to. What we are not looking for is someone who outsources their judgment to it. The mental model of this system has to live in your head, not in a context window. Use agents to move quickly on implementation. Do the design, the reasoning and the writing yourself, and be able to defend every decision you ship. What you'll do Four areas, roughly in the order you will spend time on them. You won't work on all of them at once, but you should be open to any of them. Product platform. Make the easiest way for product engineers to do something (the paved road, or golden path) also the most secure, reliable and scalable way by default. Build the shared primitives, libraries and APIs that hide complexity and carry our quality and observability standards with them. Own the architecture and the core stack: what gets standardized, what gets reused, and where the system should be in eighteen months. Infrastructure, observability and reliability. Infrastructure as code by default, from cloud resources through to dashboards and alerts. Provision, run and tune our Kubernetes cluster and cloud footprint, and keep CI fast as the deploy rate grows. Define SLIs for the workloads that matter, build SLOs on top of them, and make the alerting high-signal enough that people trust it. Drive down AI and infrastructure spend. Security and compliance. Keep the internal foundations secure by default: IAM, dependency management, secrets. Own the authentication and authorization stack, including ReBAC models covering both humans and agents. Implement SOC 2 and ISO 27001 controls without taxing every future change. AI dev tooling. Keep product engineers and their agents on the paved road by making sure the documentation and agent guidelines they need are in place. Shorten the path from design to implementation with standardized automations and development environments that stay close to production.

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