MLOps Engineer (m/f/d)

Advantest

Böblingen

Vor Ort

EUR 70.000 - 110.000

Vollzeit

Vor 7 Tagen
Sei unter den ersten Bewerbenden
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Zusammenfassung

Advantest Europe GmbH in Böblingen is seeking an MLOps Engineer to implement and operate CI/CD pipelines, automated testing and release processes for AI/ML workloads, and to build model registries and serving integrations for LLM APIs.

You will configure observability for model usage, cost, latency and reliability, and collaborate with data engineering, application development, cloud platform and security teams to ensure secure deployment and scalable operation.

Qualifikationen

  • 3-5 years of experience in DevOps, cloud engineering, ML engineering, MLOps or platform engineering.
  • Hands-on experience with CI/CD, infrastructure as code and automated deployment in production environments.
  • Strong practical Python skills and Git-based development workflows.
  • Experience with Docker and Kubernetes; Helm deployment tooling is desirable.
  • Experience with Azure or AWS cloud services including compute, storage and IAM concepts.
  • Experience with observability tools such as Prometheus, Grafana, logging platforms and alerting practices.
  • Familiarity with MLOps concepts like model registries, evaluation pipelines, drift monitoring and model lifecycle management.
  • Understanding of network isolation, identity, secrets management and API access control.
  • Fluency in English, spoken and written.

Aufgaben

  • Implement and operate CI/CD pipelines, automated testing and release processes for AI/ML workloads.
  • Build and maintain model registry, model serving and AI gateway integrations for LLM APIs and internal applications.
  • Configure observability for model usage, cost, token consumption, latency, reliability and quality signals using Prometheus, Grafana, logging and alerting platforms.
  • Support the transition of workloads from sandbox or PoC environments into production by following defined standards, runbooks and support models.
  • Implement reusable technical components for LLM API integration, RAG pipelines, evaluation pipelines and integration with business applications.
  • Execute infrastructure-as-code for platform environments across container and cloud infrastructure, including Docker, Kubernetes and Helm-based deployment patterns.
  • Maintain runbooks, operating procedures, technical documentation and operational dashboards for platform components.
  • Support incident analysis, reliability improvements, cost optimization and lifecycle maintenance for production AI workloads.
  • Work with nearshore, system integration or cloud partners on specific implementation tasks as directed by the AI Platform Engineer.
  • Collaborate with data engineering, application development, cloud platform and security teams on integration, identity, access and deployment requirements.

Kenntnisse

CI/CD
Infrastructure as code
Python
Git workflows
Docker
Kubernetes
Helm
Azure/AWS
Observability tooling
MLOps concepts
Security/Identity
English fluency

Tools

Docker
Kubernetes
Helm
Prometheus
Grafana
Azure
AWS

Jobbeschreibung

Implement and operate CI/CD pipelines, automated testing and release processes for AI/ML workloads. Build and maintain model registry, model serving and AI gateway integrations for LLM APIs and internal applications. Configure and maintain observability for model usage, cost, token consumption, latency, reliability and quality signals using tools such as Prometheus, Grafana, logging and alerting platforms. Support the transition of workloads from sandbox or PoC environments into production by following defined standards, runbooks and support models. Implement reusable technical components for LLM API integration, RAG pipelines, evaluation pipelines and integration with business applications. Execute infrastructure-as-code for platform environments across container and cloud infrastructure, including Docker, Kubernetes and Helm-based deployment patterns. Maintain runbooks, operating procedures, technical documentation and operational dashboards for platform components. Support incident analysis, reliability improvements, cost optimization and lifecycle maintenance for production AI workloads. Work with nearshore, system integration or cloud partners on specific implementation tasks as directed by the AI Platform Engineer. Collaborate with data engineering, application development, cloud platform and security teams on integration, identity, access and deployment requirements.

Advantest Europe GmbH

Böblingen

Kennziffer: 9013

MLOps Engineer (m/f/d)

Aufgabe

Implement and operate CI/CD pipelines, automated testing and release processes for AI/ML workloads. Build and maintain model registry, model serving and AI gateway integrations for LLM APIs and internal applications. Configure and maintain observability for model usage, cost, token consumption, latency, reliability and quality signals using tools such as Prometheus, Grafana, logging and alerting platforms. Support the transition of workloads from sandbox or PoC environments into production by following defined standards, runbooks and support models. Implement reusable technical components for LLM API integration, RAG pipelines, evaluation pipelines and integration with business applications. Execute infrastructure-as-code for platform environments across container and cloud infrastructure, including Docker, Kubernetes and Helm-based deployment patterns. Maintain runbooks, operating procedures, technical documentation and operational dashboards for platform components. Support incident analysis, reliability improvements, cost optimization and lifecycle maintenance for production AI workloads. Work with nearshore, system integration or cloud partners on specific implementation tasks as directed by the AI Platform Engineer. Collaborate with data engineering, application development, cloud platform and security teams on integration, identity, access and deployment requirements.

Qualifikation
  • 3-5 years of experience in DevOps, cloud engineering, ML engineering, MLOps or platform engineering.
  • Hands-on experience with CI/CD, infrastructure as code and automated deployment in production environments.
  • Strong practical Python skills and Git-based development workflows.
  • Experience with Docker and Kubernetes; deployment tooling such as Helm is desirable.
  • Working experience with Azure or AWS cloud services, including compute, storage and IAM concepts.
  • Experience with observability tooling such as Prometheus, Grafana, logging platforms and alerting practices.
  • Familiarity with MLOps concepts such as model registries, evaluation pipelines, drift monitoring and model lifecycle management.
  • Understanding of network isolation, identity, secrets management and API access control.
  • Fluency in English, spoken and written.
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