AstraZeneca Posted September 22, 2026

Senior Director, Global Commercial Data, AI & Reporting Excellence

Barcelona, Spain Full time
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AstraZeneca is the source of truth for this posting and owns the application process. We surface normalized context and market comparison you won't find on the original listing.

About this opportunity

Senior Director, Global Commercial Data, AI & Reporting Excellence

Reports to: VP, Global Insights & Business Excellence (GIBEx), BBU

Scope: Global | Commercial data, AI, digital platforms and performance reporting | Approximately five direct reports plus matrix delivery teams

Role purpose

The Senior Director sets the enterprise direction for how BBU commercial data, AI and reporting capabilities are designed, governed and scaled. The role owns the business strategy and value of key commercial data products and decision platforms, ensuring that trusted data and responsible AI improve decision quality, speed, productivity and commercial outcomes.

This is a senior business and technology savvy leadership role. The role translates commercial priorities into an AI-enabled data and digital roadmap; establishes clear product ownership, architecture principles, governance and reusable standards; and partners with Commercial IT, the Commercial Data Office, Finance, Enterprise AI teams, Operations, Insights, Analytics and Forecasting, global brand teams, regions and markets to deliver adoption and measurable value.

The portfolio includes pharmaceutical secondary market data and healthcare professional engagement data, together with the products, semantic definitions, interfaces, analytics and reporting platforms that make these assets usable. The role leads Data Product Owners and Platform Leads and is accountable for talent, delivery quality, investment choices, risk and value realisation.

Key responsibilities

Set strategy and investment priorities: Define the multi-year vision and roadmap for commercial data, AI, reporting and digital decision platforms, aligned to BBU and GIBEx priorities.

Own the business data architecture: Establish target-state principles for data domains, products, models, metadata, taxonomy, lineage, interoperability and access. Partner with Commercial IT on the technical architecture and prevent fragmented or duplicative solutions.

Lead AI-enabled work redesign: Identify where predictive, generative and agentic AI can improve decisions and workflows; prioritise use cases by value, feasibility and risk; and move successful solutions from experiment to governed, scalable products.

Ensure responsible AI: Embed human accountability, validation, explainability, privacy, security, bias controls, monitoring and auditability across the AI lifecycle, in line with applicable policies and regulation.

Lead the data-product portfolio: Own product vision, outcomes, lifecycle, roadmaps and backlogs for commercial data products and platforms. Apply user discovery and product management to anticipate and solve priority business problems rather than produce outputs on request.

Create trusted data: Establish clear ownership, quality standards, critical data definitions, controls and issue-resolution routes for pharmaceutical secondary data and HCP engagement data.

Modernise reporting and decision support: Simplify and standardise enterprise KPIs, reporting and executive performance views; increase reuse and self-service; and retire low-value or duplicative products.

Deliver measurable value: Define and track adoption, decision impact, productivity, quality, risk and return on investment. Use evidence to stop, redesign or scale work.

Orchestrate enterprise delivery: Align GIBEx, global brands, regions, markets, Commercial IT, the Commercial Data Office, Finance, AI teams and Operations around shared priorities, decision rights, standards and delivery plans.

Lead talent and partners: Build a high-performing, globally distributed team; develop AI, product, data and commercial capability; manage vendors, budgets, capacity and delivery risk; and create clear accountability across direct and matrix teams.

Advise senior leaders: Translate complex data and technology choices into clear business options, trade-offs, recommendations and risks for executive decisions.

Essential experience and skills

Significant senior leadership experience in commercial data, analytics, AI, digital products or data platforms within pharmaceuticals, life sciences or another complex, regulated sector.

Demonstrated ownership of an enterprise data and AI strategy, with evidence of moving products from concept through deployment, adoption, operation and measurable value.

Strong working knowledge of modern data architecture, including domain-based data products, cloud data platforms, integration patterns and APIs, semantic layers, master and reference data, metadata, lineage, identity and access, and structured and unstructured data.

Strong AI literacy across machine learning, generative AI and agentic workflows, including model and use-case evaluation, human-in-the-loop design, retrieval approaches, monitoring and responsible AI controls. The role does not require hands-on model coding but does require credible technical judgement.

Expertise in data-product and platform management: customer discovery, product vision, roadmaps, prioritisation, lifecycle ownership, service levels, adoption and value measurement.

Deep understanding of data governance, quality, privacy, security, regulatory expectations and third-party risk in a regulated environment.

Knowledge of pharmaceutical commercial data, including secondary sales and market data, claims or real-world data, and HCP/customer engagement across digital and physical channels.

Experience simplifying enterprise reporting, defining common KPIs and enabling governed self-service analytics for senior decision-makers.

Proven ability to lead agile, cross-functional and globally distributed teams and to manage vendors, budgets, dependencies and delivery risk.

Executive-level influence and communication: able to frame decisions, challenge assumptions, explain technical trade-offs simply and secure alignment without direct authority.

Strong commercial judgement, curiosity and learning agility, with a record of anticipating business needs and converting emerging technology into practical, scalable outcomes.

Track record of coaching leaders and building scarce AI, data, digital and product capabilities.

Desirable experience

Postgraduate qualification in data science, computer science, engineering, information systems, business or a related discipline.

Experience with explainable AI, model risk management, MLOps or LLMOps, knowledge graphs, data mesh or fabric concepts, and AI-ready data foundations.

Experience redesigning operating models and workflows to embed AI at scale, including change, adoption and capability-building.

Country, regional or global experience in Insights, Analytics, Forecasting, Commercial Excellence or Digital.

Ability to work globally, including international travel where required.

What success looks like

Leaders use one trusted, decision-ready view of commercial performance.

Priority data and AI products have clear owners, standards, controls, adoption measures and realised business value.

AI-enabled workflows are scaled responsibly beyond pilots, with defined human accountability and evidence of improved quality, speed or productivity.

Data duplication and manual reporting reduce as reusable products, common definitions and governed self-service increase.

The team has stronger AI, data architecture, digital product and commercial decision skills, with a sustainable succession pipeline.

Date Posted

22-Sep-2026

Closing Date

05-Oct-2026

AstraZeneca embraces diversity and equality of opportunity.  We are committed to building an inclusive and diverse team representing all backgrounds, with as wide a range of perspectives as possible, and harnessing industry-leading skills.  We believe that the more inclusive we are, the better our work will be.  We welcome and consider applications to join our team from all qualified candidates, regardless of their characteristics.  We comply with all applicable laws and regulations on non-discrimination in employment (and recruitment), as well as work authorization and employment eligibility verification requirements.

Job details

Seniority
Senior Director
Function
Commercial & General Management
Therapeutic area
Not listed
Location
Barcelona, Spain
Employment type
Full time

How this role compares

Computed from every other active Commercial & General Management role in our database, not just this employer's listings.

We currently track 19 comparable Senior Director Commercial & General Management roles across 3 biopharma companies.

19Comparable roles tracked
18Currently active
3Companies hiring similar roles
4Countries represented

Salary context

5 of 19 peers report a salary range (USD, annualized)

Peers share this role's job function and a matching or adjacent seniority level -- not necessarily the same therapeutic area or country.

This roleSubject Not listed on this posting
Lowest disclosed · Director, Business Strategy and Operations · Kite Pharma, Inc. $205,615/yr – $266,090/yr
Highest disclosed · Sr Director, Business Strategy and Operations · Gilead Sciences, Inc. $243,100/yr – $314,600/yr
Peer group range $235,853 – $278,850 (median $259,448)

Where these roles are based

Top locations among the 19 comparable roles

United States16
Spain1
Japan1
United Kingdom1

Seniority mix

19 of 19 peers have a known seniority level

Director11
Senior Director7
Executive/VP1

Therapeutic area mix

3 of 19 peers have a known therapeutic area; the rest are genuinely unlabeled, not hidden

Cardiovascular / CVRM2
Oncology1

Similar opportunities

The closest matches from our peer group, ranked by how similar they are, not how well you'd qualify for them -- treat this as market context, not a guaranteed shortlist; a weak match is labeled as one below.

50%similar
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Notify me about similar jobs

Get an email when we spot other openings like this one – same job function, comparable seniority, roles you'd actually want to see.

How we calculate "similar"

No black box, no LLM guesswork: a deterministic score built from four normalized attributes. Here's this role's own peer group at different match levels, so you can see the mechanism, not just the result.

Every comparison starts from the same 100-point budget: 25 for working in the same function, 40 for the same therapeutic area, 20 for the same or adjacent seniority, 15 for the same country. A dimension we can't confirm on both sides contributes nothing, never a guess, never a free pass.

50%
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Function Therapeutic area Adjacent seniority Country
45%
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Gilead Sciences, Inc. · La Verne, United States · Senior Director
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45%
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Gilead Sciences, Inc. · Foster City, United States · Executive/VP
Function Therapeutic area Adjacent seniority Country
Unmatched or unknown dimensions score exactly the same: 0 points, never a partial guess. A role we know almost nothing about beyond its function bottoms out at 25%; it never inflates to 100% just because there's little to compare against. Seniority uses a defined ladder (Associate → Manager → Associate Director → Senior → Principal → Director → Senior Director → Executive/VP) so "Director" and "Senior Director" count as adjacent, but "Director" and "Executive/VP" do not.