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Engineering Director - AI Solutions; Enabling Functions

Trabajo disponible en: 08001, Barcelona, Cataluna, España
Empresa: AstraZeneca plc
Tiempo completo puesto
Publicado en 2026-10-03
Especializaciones laborales:
  • Negocios
    Analista de cumplimiento
Rango Salarial o Referencia de la Industria: 180000 - 280000 EUR Anual EUR 180000.00 280000.00 YEAR
Descripción del trabajo
Puesto: Engineering Director - AI Solutions (Enabling Functions)

Role Overview

A senior engineering leadership role responsible for the technical direction, hands-on delivery, and production scaling of AI solutions across enterprise enabling functions — including HR, Finance, Procurement, Legal, Audit, Compliance, and Business Development
.

This is a builder-leader role
. The Engineering Director combines deep hands-on AI engineering — designing and shipping multi-agent systems, RAG pipelines, and governed AI applications — with the technical leadership required to drive a team from opportunity identification through to production deployment. They bring a rare and deliberate combination: the ability to move from idea to working proof-of-concept in days, alongside significant depth in AI governance
, operational resilience
, and regulatory compliance — not as adjacent knowledge, but as a core professional discipline that shapes how they build, assess, and operate AI systems.

The role sits within the Enterprise AI function and works in close partnership with enterprise technology, data engineering, technology governance, legal, information security, and functional stakeholders to deliver AI that is production-grade, auditable, and compliant from the first commit — not retrofitted at the end. Given geographic considerations, the role carries particular responsibility for navigating multi-jurisdictional data sovereignty, regulatory divergence, and cross-border AI governance — ensuring systems are defensible under all applicable regulatory regimes.

Context

Enabling functions — HR, Finance, Procurement, Legal, Audit, and Compliance — govern how an organisation hires, contracts, spends, reports, partners, audits, and maintains compliance. They represent high-value AI opportunities and high-consequence environments — where outputs carry regulatory, financial, and reputational weight. Realising value at scale requires engineering leadership that can navigate complex data landscapes, build for reuse, and embed governance, human oversight, and operational resilience into architecture decisions from the outset.

These AI applications do not exist in a vacuum. Each system must be governed — classified, registered, monitored, auditable, and defensible to regulators, auditors, and internal oversight functions. The governance and resilience challenge is twofold: building AI systems that are themselves resilient and well-governed, and ensuring the frameworks, processes, and controls that surround those systems are robust, proportionate, and continuously maintained.

The role demands someone who has operated at this intersection for a significant portion of their career — not someone encountering governance as a new discipline.

This role is designed for an engineer who has already built AI applications inside a large, regulated enterprise
, who has demonstrated experience delivering AI solutions across multiple enabling functions (e.g., HR, Finance, Procurement, Legal, Audit), who has significant experience governing AI systems and embedding operational resilience disciplines around them, and who treats regulatory requirements as architecture decisions — not compliance check boxes.

Key Responsibilities 1. Technical Direction & Architecture
  • Lead the engineering roadmap for AI across enabling functions, aligning architecture, delivery sequencing, and capability development to business priorities across HR, Finance, Procurement, Legal, Audit, and Compliance
  • Set architectural direction for scalable, governed AI platforms — designing for modularity
    , cross-functional reuse
    , and compliance from the outset
  • Make high-consequence technical decisions on architecture, build-vs-buy, model strategy (foundation models, fine-tuning, multi-provider orchestration, RAG), and integration patterns
  • Drive…
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