AstraZeneca

Head of Artificial Intelligence - ICC

AstraZeneca$180K — $220K *
Pharmaceuticals & Biotech
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • Advanced degree (Master's or PhD) in Computer Science, Engineering, Mathematics, or a related quantitative field.
  • 10+ years of experience leading high-performing AI teams in life sciences or R&D environments.
  • Strategic capability in transforming AI initiatives for significant business impact.
  • Expertise in AI/ML technologies with proven results in complex, multi-stakeholder settings.
  • Strong communication skills to bridge technical and scientific teams, particularly for executive audiences.
  • Experience in building and mentoring multi-disciplinary AI teams across different locations.

Responsibilities

  • Define and execute the end-to-end AI strategy across related divisions.
  • Prioritize initiatives, including predictive modeling for cell therapy and in silico binder design.
  • Develop collaborative analysis capabilities to improve decision-making speed and quality.
  • Lead predictive models to optimize CAR-T designs, reducing cycle times for validation.
  • Automate research processes to streamline operations and improve reproducibility across teams.
  • Instigate comprehensive training programs to uplift AI literacy and foster collaboration.
  • Establish governance protocols for compliance, KPIs, and resource management.

Benefits

  • Opportunity to shape AI strategy in a leading biopharmaceutical company.
  • Collaboration with talented AI and R&D experts across multiple regions.
  • Engagement in a culture that emphasizes innovation and collaboration.
  • Flexible work arrangements balancing office presence with individual needs.
  • Involvement in cutting-edge projects that directly impact health and medicine.
Full Job Description
Head of Artificial Intelligence - ICC

AstraZeneca is creating a new leadership role to consolidate and direct AI across Cell Therapy Discovery and Targeted Immune Engagers. Based in the United States (GTB or BOS), the United Kingdom (Cambridge) or the Netherlands (Amsterdam), you will compose the AI strategy, lead delivery of a high-value portfolio, and embed AI as a core capability powering our next wave of medicines. As a member of the CTD and TIE leadership teams reporting to the SVP for IO Discovery and Cell Therapy Oncology, you will set direction, mobilize talent, and deliver measurable impact across discovery and operations.

This is a hands-on, build-and-scale mandate. You will form a centralized group of AI experts embedded with R&D teams, orchestrate initiatives from agentic knowledge hubs to predictive CAR-T models and in silico binder design, and establish the governance and operating rhythm that turns prototypes into durable platforms and outcomes.

Accountabilities:

- Strategic Leadership: Define and implement the end-to-end AI strategy across CTD and TIE, aligned to enterprise AI goals, with a clear roadmap for [redacted] and beyond.
- Portfolio Orchestration: Prioritize and deliver a focused slate of initiatives including agentic knowledge hubs, predictive modeling for cell therapy, in silico protein and binder design, TCR affinity maturation, CRISPR off-target safety, and next-generation analytics.
- Agentic AI Development: Build, test, and scale knowledge hub capabilities that enable collaborative analysis, rapid retrieval of institutional knowledge, and faster, better decisions.
- Predictive Modeling for Cell Therapy: Lead models that optimize CAR-T design and performance, reducing cycle times from hypothesis to validation and improving program selection.
- In Silico Protein and Binder Design: Deploy AI workflows that generate and refine binders and mature affinity, increasing hit quality and reducing experimental burden.
- CRISPR Safety and Risk: Implement sophisticated off-target workflows to improve safety assessments, strengthen study build, and de-risk pipelines.
- Workflow Automation: Automate research and analytics processes to streamline operations, reduce manual effort, and increase reproducibility across sites and teams.
- AI Upskilling and Culture: Orchestrate training that lifts foundational AI literacy and fosters an innovative, high-integrity culture where scientists and engineers co-create solutions.
- Collaborator Partnership: Build deep collaboration with enterprise AI, platform, and external partners to align standards, share knowledge, and improve resource leverage.
- Governance and Value Realization: Implement robust governance, regulatory compliance, and budget/resource management; institute KPIs that quantify scientific and operational value.
- Communication and Influence: Translate sophisticated technical insights into clear narratives for executive and non-technical collaborators, shaping R&D strategy and investment decisions.

Essential Skills/Experience:

- Advanced degree (Master's or PhD) in Computer Science, Engineering, Mathematics, or a related quantitative field.
- Demonstrated 10+ years of experience successfully leading high-performing AI teams and sophisticated AI programs, ideally in life sciences, technology, or R&D-driven environments.
- Strategic skill in shaping, scaling, and transforming AI activities for maximum business and scientific impact.
- Expertise in the development and deployment of AI/ML technologies, with proven outcomes in sophisticated, multi-stakeholder environments.
- Strong understanding of biology or R&D workflows preferred but not required; ability to translate between technical and scientific teams is essential.
- Outstanding organizational, communication, and collaborator engagement skills, including experience communicating/translating sophisticated technical findings and priorities to executive and non-technical partners.
- Proven experience building, mentoring, and scaling multi-disciplinary teams comprised of machine learning scientists, AI engineers, and data professionals, distributed across multiple locations and embedded in different R&D teams.
- Track record of encouraging a collaborative, innovative, and high-integrity team culture.

Desirable Skills/Experience:

- Direct experience applying AI/ML to cell therapy, protein engineering, immunology, or related modalities.
- Demonstrated delivery of one or more: agentic knowledge hubs, CAR-T predictive models, in silico binder generation, TCR affinity maturation workflows, CRISPR off-target analyses, or computational mutagenesis.
- Familiarity with LLMs, knowledge graphs, MLOps, and cloud-native platforms; experience integrating these into enterprise environments.
- Experience with data governance, model risk management, and compliance practices relevant to R&D and regulated settings.
- Success managing multi-site teams and external ecosystems, including vendors, consortia, and academic collaborations.
- Portfolio management experience with clear KPI frameworks and budget ownership.

When we put unexpected teams in the same room, we unleash ambitious thinking with the power to encourage life-changing medicines. In-person working gives us the platform we need to connect, work at pace and challenge perceptions. That's why we work, on average, a minimum of three days per week from the office. But that doesn't mean we're not flexible. We balance the expectation of being in the office while respecting individual flexibility. Join us in our outstanding and ambitious world!

Date Posted
07-Aug-2026

Closing Date
21-Aug-2026

About AstraZeneca

AstraZeneca is a British-Swedish multinational pharmaceutical company that specializes in the research, development, and manufacturing of prescription drugs. The company was formed in 1999 through the merger of Astra AB and Zeneca Group plc. AstraZeneca's products are used to treat a wide range of medical conditions, including cancer, cardiovascular disease, respiratory disease, and diabetes. The company has operations in over 100 countries and employs more than 76,000 people worldwide. AstraZeneca is committed to developing innovative medicines that improve the health and well-being of people around the world.
Learn more about AstraZeneca
Size
83,100 employees
Market Cap
$211.5 billion
Industry
Net Income
$3.1 billion
Founded
1999
5 Year Trend
+10.2%
Revenue
$26.6 billion
NASDAQ

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