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Lead AI & Data Engineer – APD Platform

AstraZeneca

BarcelonaFull-timeMid LevelOn-site

Job Description

Overview

In this Lead AI & Data Engineer role, you will shape the APD Platform, enabling R&D teams to access and trust data for advanced analytics and AI use cases. You’ll lead hands-on engineering while collaborating with data scientists, software engineers, and stakeholders to deliver secure, scalable data and AI capabilities. You will drive reusable patterns, platform standards, and governance to support data-driven decision-making across the organization.

This is a chance to influence how AI accelerates drug development in a collaborative, innovation-driven environment.

Compensaciones / Beneficios
  • in-person collaboration ~3 days/week
  • flexible working arrangements
  • inclusive and diverse environment
  • opportunity to contribute to meaningful medicines
  • collaboration with global experts
Responsabilidades
  • Design, develop, test, deploy, and maintain production-grade data and AI solutions for the APD Platform
  • Collaborate with stakeholders to translate needs into scalable, maintainable, and observable solutions
  • Contribute to platform architecture, standards, and reusable patterns
  • Ingest and manage data from structured and unstructured sources with quality controls and governance
  • Develop and operationalize AI/ML capabilities, including model deployment and lifecycle management
  • Apply DevOps practices: CI/CD, infrastructure as code, containerisation, monitoring, and incident response
  • Create technical documentation, perform peer reviews, and promote knowledge sharing
  • Provide technical leadership through hands-on work, reviews, and collaborative decision-making
  • Mentor engineers and align engineering decisions with platform strategy and enterprise standards
Requisitos principales
  • Extensive experience in data/AI/software engineering with technical leadership in a complex enterprise
  • Strong programming in Python (and/or another modern language); solid SQL, data modelling, APIs, version control, and automated testing
  • Experience designing and implementing data pipelines, data products, or data platforms in the cloud
  • Familiarity with one or more cloud platforms and services for storage, compute, databases, analytics, ML, identity, and monitoring
  • Understanding of ML engineering and MLOps, including deployment, monitoring, reproducibility, and lifecycle management
  • Experience deploying AI/ML solutions, including generative AI, LLM integration, retrieval-augmented generation, and AI service deployment
  • CI/CD, infrastructure as code, containerisation, observability, agile delivery
  • Experience with Spark, Docker, Kubernetes, Terraform, Git workflows; strong communication across technical and non-technical audiences
  • Collaborative, structured problem-solving, stakeholder engagement across distributed teams
  • collaboration
  • structured problem-solving
  • stakeholder engagement
  • Python
  • SQL
  • data pipelines

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