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Data Foundation Engineering Lead - Evinova

Astrazeneca Pharmaceuticals Lp · 🌍 Spain - Barcelona

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About the role

Evinova is   seeking   a passionate and experienced   Data Foundation Engineering Lead   to   guide   in   the transformation of our   platform-wide data foundation   to   enable   our products, data science, and   agent s to deliver category leading capabilities . Join us in   leveraging   cutting-edge   technology, data, and AI to revolutionize life sciences and improve billions of lives globally.   In this pivotal role, you will design, implement, and   optimize   robust cloud-based data   lakehouse   infrastructure and operational frameworks that enable rapid innovation and deliver exceptional system reliability .     You will be   one of the senior - most   engineer s   within the team ;   expected to be hands on, guide ,   and  m entor   the   team .   You will need to shar e your   expertise   in cloud   data   infrastructure, automation,   and best practices   with the whole of   Evinova .   Key Responsibilities   Infrastructure Design & Management:   • AWS Data Services:   Deep hands-on experience with Lake Formation, Glue (ETL + Catalog ue   + Schema Registry), Athena, and at least one of   EMR   / Redshift Serverless. You understand how these compose, not just how each works in isolation .   • Open Table Formats:   Production experience with   S3 Tables, Apache Iceberg (preferred) ,   or Delta Lake. You understand partition evolution, schema evolution, time travel, and compaction — and when each   matter .   • Streaming:   Built production streaming pipelines with Kinesis Data Streams or MSK. Comfortable with   exactly once   semantics, windowing, late-arriving data, and backpressure .   • Infrastructure as Code:   AWS CDK ( TypeScript ) or CloudFormation. You define infrastructure in code, not in the console. CI/CD for data pipelines is   expected ,   we currently use GitHub Actions, and some Terraform .   • Data Modelling:   Can design dimensional models, event schemas, and slowly changing dimensions. Understand the trade-offs between   normali z ed   and denormali z ed storage for different access patterns .   • Governance and Security:   Practical experience implementing column-level security, row-level filtering, or tag-based access control. Understands how data classification drives policy .   • Python or Spark:   For ETL logic, feature extraction, and data quality validation.   PySpark   or Spark Scala for distributed transforms .   • AI & Machine Learning:   Exposure to AI tools and frameworks is a plus.   • Mentorship & Leadership:   Mentor and guide junior and mid-level engineers, fostering a culture of learning and collaboration. Provide technical leadership in the adoption of   the tooling, patterns, and   automation   best practices .   • Collaboration:   Partner with cross-functional teams, including product management and security, to align   data foundation   strategies with business goals and ensure cohesive development and operational workflows.   Required Experience & Qualifications: • Experience:   10 + years in   Data Engineering   roles, with   significant experience   in SaaS and multi-tenant   data   platforms. Proven   track record   of mentoring team members   in   data platform   related projects .   • Cloud Expertise:   Strong   understanding   of AWS services, including VPC, IAM, EC2, S3, RDS, Lambda, EKS, AWS WAF, and AWS CloudTrail.   • Data Products:   Expert knowledge of   S3, RDS,   DynamoDB, Kinesis,   Glue,   DataZone , Athena, RedShift Serverless,   and AWS   EventBridge .   • Containerization & Orchestration:   Deep   proficiency   in Docker, Kubernetes, Helm, and associated ecosystem tools.   • CI/CD Proficiency:   Expertise   in CI/CD tools such as   ArgoCD   and GitHub Actions.   • Infrastructure as Code ( IaC ):   Advanced experience with AWS CDK (TypeScript

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Source: Employer career site (Workday) First seen: 2026-10-01 Last confirmed: 2026-10-02 How our data works → Report this job

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