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Agent guide: [/agents.md](https://www.wearedevelopers.com/agents.md). --- # DevOps Engineer - **Company:** Banco Santander, S.A. - **Location:** Madrid, Spain - **Contract:** Permanent contract - **Skills:** Artificial Intelligence, Amazon Web Services, Automation of Tests, Microsoft Azure, Bash Shell, Cloud Computing, Continuous Delivery, Continuous Integration, Information Engineering, Software Debugging, DevOps, Github, Monitoring of Systems, HP Systems Insight Manager, Python (Programming Language), Machine Learning, Reliability Engineering, Prometheus, Software Deployment, Data Logging, Google Cloud, Cloud Platform System, Data Ingestion, System Availability, Delivery Pipeline, Grafana, Generative AI, Cloudformation, Containerization, AI Platforms, Gitlab-ci, Kubernetes, Infrastructure Automation Frameworks, Information Technology, Machine Learning Operations, Cloudwatch, Terraform, Software Version Control, Dynatrace, Docker, Elk Stack, Jenkins, Golang, Microservices - **Published:** September 24, 2026 - **Apply:** https://www.adzuna.es/contact-us.html ## About the Role + 5+ years of experience in DevOps, Site Reliability Engineering, or Platform Engineering roles. (Required) + Proven experience supporting ML/AI workloads in production environments. (Required) + Hands-on experience with containerization (Docker, Kubernetes) and orchestration of microservices. (Required) + Strong background in managing cloud environments (AWS or GCP), including cost optimization and security best practices. (Required) + Solid experience implementing CI/CD pipelines and using tools such as Jenkins, GitHub Actions, GitLab CI, or similar + Familiarity with machine learning workflows, model deployment patterns, and MLOps tools (e.g., MLflow, Kubeflow, SageMaker, Vertex AI). (Preferred) Education + BSc or MSc in Computer Science, Engineering, or a related technical field. (Required) + Relevant certifications in cloud platforms or DevOps practices (e.g., AWS DevOps Engineer, Azure DevOps, Google Cloud DevOps). (Preferred) Languages + Spanish proficiency. (Required) + High level of English . (Preferred) Hard Skills + Strong scripting and automation skills (e.g., Python, Bash, Go). (Required) + Experience with monitoring and logging tools (e.g., CloudWatch, Prometheus, Grafana, ELK Stack, Dynatrace). (Required) + Deep understanding of CI/CD and infrastructure automation principles. (Required) + Knowledge of security and compliance in cloud-based and AI-driven systems. (Required) + Experience with application monitoring and logging tools (e.g., Prometheus, Grafana, ELK Stack). (Preferred) Soft Skills + Strong problem-solving skills, a deep sense of ownership, and a proactive attitude. + Excellent communication skills with the ability to lead technical discussions and collaborate effectively with both technical and non-technical stakeholders. ## Description You will play a key role in enabling the design, development, and deployment of scalable and resilient AI solutions. Your mission will be to build and maintain the infrastructure and automation pipelines that support the entire AI lifecycle-from experimentation to production-ensuring agility, security, and operational excellence. You will work in close collaboration with AI Experts, Data Scientists, ML Engineers, and enterprise technology partners to accelerate the delivery of AI products that drive business value across Santander. This is a critical role in the AI transformation agenda, empowering the team to deliver responsible AI at scale. We're shaping the way we work through innovation, cutting-edge technology, collaboration and the freedom to explore new ideas. To succeed in this role, you will be responsible for: + Design, implement, and manage robust CI/CD pipelines for AI/ML models and GenAI applications. + Build and maintain cloud-native infrastructure (AWS or GCP) to support the full AI lifecycle: from data ingestion and model training to production deployment and monitoring. + Automate infrastructure provisioning using Infrastructure as Code (IaC) tools such as Terraform, or CloudFormation. + Ensure scalability, reliability, and high availability of AI services in production environments + Implement and enforce best practices in MLOps, including model versioning, monitoring, rollback, and automated testing. + Collaborate with data engineering and ML teams to operationalize AI models and integrate them into business-critical systems. + Monitor system performance, debug issues, and lead root-cause analysis and resolution of incidents. + Champion security, compliance, and governance standards across the AI tech stack. + Contribute to the continuous improvement of DevOps capabilities and tooling within the AI Tech Team. + Act as a technical advisor in DevOps and MLOps practices, fostering a culture of automation and engineering excellence. WHAT YOU'LL BRING Our people are our greatest strength. Every individual contributes unique perspectives that make us stronger as a team and as an organization. We're enabling teams to go beyond by valuing who they are and empowering what they bring. The following requirements represent the knowledge, skills, and abilities essential for success in this role. 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