The Onyx Research Data Tech organization is GSK’s Research data ecosystem which has the capability to bring together, analyze, and power the exploration of data at scale. We partner with scientists across GSK to define and understand their challenges and develop tailored solutions that meet their needs. The goal is to ensure scientists have the right data and insights when they need it to give them a better starting point for and accelerate medical discovery. Ultimately, this helps us get ahead of disease in more predictive and powerful ways.
Onyx is a full-stack shop consisting of product and portfolio leadership, data engineering, infrastructure and DevOps, data / metadata / knowledge platforms, and AI/ML and analysis platforms, all geared toward:
1. Building a next-generation, metadata- and automation-driven data experience for GSK’s scientists, engineers, and decision-makers, increasing productivity and reducing time spent on “data mechanics”
2. Providing best-in-class AI/ML and data analysis environments to accelerate our predictive capabilities and attract top-tier talent
3. Aggressively engineering our data at scale, as one unified asset, to unlock the value of our unique collection of data and predictions in real-time
The Onyx Data Architecture team sits within the Data Engineering team, which is responsible for the design, delivery, support, and maintenance of industrialized automated end to end data services and pipelines. They apply standardized data models and mapping to ensure data is accessible for end users in end-to-end user tools through use of APIs. They define and embed best practices and ensure compliance with Quality Management practices and alignment to automated data governance. They also acquire and process internal and external, structure and unstructured data in line with Product requirements.
As a Data Architect II, you'll apply your expertise in big data and AI/GenAI workflows to support GSK's complex, regulated R&D environment.
You'll contribute to designing Data Mesh/Data Fabric architectures while enabling modern AI and machine learning capabilities across our
platform.
You will be responsible for…
4. Partner with the Scientific Knowledge Engineering team to develop physical data models to build fit-for-purpose data products
5. Design data architecture aligned with enterprise-wide standards to promote interoperability
6. Collaborate with the platform teams and data engineers to maintain architecture principles, standards, and guidelines
7. Design data foundations that support GenAI workflows including RAG (Retrieval-Augmented Generation), vector databases, and
embedding pipelines
8. Work across business areas and stakeholders to ensure consistent implementation of architecture standards
9. Lead reviews and maintain architecture documentation and best practices for Onyx and our stakeholders
10. Adopt security-first design with robust authentication and resilient connectivity
11. Provide best practices and leadership, subject matter, and GSK expertise to architecture and engineering teams composed of GSK
FTEs, strategic partners, and software vendors.
.
Why you?
Basic Qualifications:
12. Bachelor’s degree in computer science, engineering, Data Science or similar discipline
13. 5+ years of experience in data architecture, data engineering, or related fields in pharma, healthcare, or life sciences R&D.
14. 3+ years’ experience of defining architecture standards, patterns on Big Data platforms
15. 3+ years’ experience with data warehouse, data lake, and enterprise big data platforms
16. 3+ years’ experience with enterprise cloud data architecture (preferably Azure or GCP) and delivering solutions at scale
17. 3+ years of hands-on relational, dimensional, and/or analytic experience (using RDBMS, dimensional, NoSQL data platform technologies, and ETL and data ingestion protocols)
Preferred Qualifications:
18. Master's or PhD in computer science, engineering, Data Science or similar discipline
19. Deep knowledge and use of at least one common programming language: e.g., Python, Scala, Java
20. Experience with AI/ML data workflows: feature stores, vector databases, embedding pipelines, model serving architectures
21. Familiarity with GenAI/LLM data patterns: RAG architectures, prompt engineering data requirements, fine-tuning data preparation
22. Experience with GCP data/analytics stack: Spark, Dataflow, Dataproc, GCS, Bigquery
23. Experience with enterprise data tools: Ataccama, Collibra, Acryl
24. Experience with Agile frameworks: SAFe, Jira, Confluence, Azure DevOps
25. Experience applying CI/CD principles to data solution
26. Experience with Spark and RAG-based architectures for data science and ML use cases
27. Strong communication skills—ability to explain technical concepts to non-technical stakeholders
28. Pharmaceutical, healthcare, or life sciences background
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Why GSK?
Uniting science, technology and talent to get ahead of disease together.
GSK is a global biopharma company with a purpose to unite science, technology and talent to get ahead of disease together. We aim to positively impact the health of 2.5 billion people by the end of the decade, as a successful, growing company where people can thrive. We get ahead of disease by preventing and treating it with innovation in specialty medicines and vaccines. We focus on four therapeutic areas: respiratory, immunology and inflammation; oncology; HIV; and infectious diseases – to impact health at scale.
People and patients around the world count on the medicines and vaccines we make, so we’re committed to creating an environment where our people can thrive and focus on what matters most. Our culture of being ambitious for patients, accountable for impact and doing the right thing is the foundation for how, together, we deliver for patients, shareholders and our people.
GSK is an Equal Opportunity Employer. This ensures that all qualified applicants will receive equal consideration for employment without regard to race, color, religion, sex (including pregnancy, gender identity, and sexual orientation), parental status, national origin, age, disability, genetic information (including family medical history), military service or any basis prohibited under federal, state or local law.
We believe in an agile working culture for all our roles. If flexibility is important to you, we encourage you to explore with our hiring team what the opportunities are.