Associate Director Solutions Partner (Scientific Data Product Owner)

Posted Yesterday
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Tarrytown, NY, USA
In-Office
216K-360K Annually
Expert/Leader
Biotech • Pharmaceutical
The Role
Lead data strategy and product ownership for modelling, connecting, and delivering research and preclinical scientific data products in the enterprise data lake. Define data models, partner with data engineering and data science to build ETL/ELT pipelines and analytics-ready datasets, enforce data governance/FAIR principles, and prioritize roadmaps to meet scientific and analytics stakeholder needs.
Summary Generated by Built In

Build our future together:

We are seeking an Associate Director Solutions Partner to be a Scientific Data Product Owner and to lead the holistic data strategy for modelling, connecting, and managing Research and preclinical development scientific data in our enterprise data lake. This data originates from our transactional lab informatics systems (e.g., ELN, LIMS, instrument and analytical platforms, registration systems), and our goal is to transform it from siloed transactional records into well-modelled, connected, and reusable data products.

Sitting at the intersection of science, data engineering, and product management, you will own the vision and roadmap for how scientific data from Research and preclinical development is structured and surfaced within the data lake. You will partner closely with Digital & Technology teams that need connected data products to analyze and report on scientific outcomes, and with data scientists who require curated, connected scientific datasets to power analytics, modelling, and AI initiatives. You will also work hand in hand with data engineering teams to build these connected data products in the lake.

This is a strategic, cross-functional role for someone who understands both the underlying science and the data architecture required to make that science discoverable and actionable at scale, and who is able to productively partner with multiple stakeholders at multiple levels throughout the organization.

When: Based at our Tarrytown, NY location

Where: 4 days onsite per week required

 Discover your role:

  • Define and drive the holistic data strategy for modelling and managing connected scientific data in the data lake, ensuring data flowing in from transactional lab informatics systems is harmonized, contextualized, and connected.
  • Partner with data engineering to define and shape the ingestion, transformation, and integration pipelines (ETL/ELT) that move data from transactional lab informatics systems into the data lake and turn it into connected, production-grade data products.
  • Own the product vision, roadmap, and backlog for scientific data products, prioritizing based on scientific value, downstream demand, and organizational impact.
  • Design and govern data models that capture the relationships across scientific entities (e.g., compounds, biologics, samples, assays, experiments, results, instruments, and study metadata) so that data is connected rather than isolated.
  • Translate the needs of scientific, Digital & Technology, and analytics stakeholders into clear data product requirements, acceptance criteria, and delivery plans, and drive outcomes that are aligned with all stakeholders, as well as with the corporate Digital and Transformation strategy.
  • Partner with Digital & Technology teams that consume connected data products from the data lake for analysis and reporting, ensuring data products meet their integration, quality, and access requirements.
  • Partner with data scientists seeking connected scientific datasets, ensuring datasets are analytics-ready, well-documented, and fit for modelling and AI/ML use cases.
  • Establish and uphold data quality, governance, lineage, metadata, and FAIR (Findable, Accessible, Interoperable, Reusable) principles across scientific data products.
  • Conceive, elicit, and champion the use of AI-driven approaches for searching and discovering structured scientific data, improving how users find and connect relevant datasets.
  • Act as the primary point of contact and advocate for scientific data products, gathering feedback and continuously improving usability, coverage, and value.

This role requires: 

  • BS/BA degree and/or MS degree in a related field required.
  • 10+ years of progressive experience managing scientific laboratory data, ideally within the biopharmaceutical or life sciences industry.
  • Strong scientific background (e.g., chemistry, biology, molecular biology, biochemistry, immunology, pharmacology, or a related discipline), with the ability to understand the meaning and context of the data being modelled.
  • Hands-on experience with data modelling and an understanding of how to connect data across multiple source systems.
  • Ability to drive diverse stakeholders to alignment on desired outcomes, and to influence others at multiple levels without direct authority.
  • Working knowledge of data engineering concepts — data pipelines, ETL/ELT, and data transformation — sufficient to define requirements for and collaborate effectively with data engineers.
  • Strong SQL skills, plus proficiency in a primary Databricks language (e.g., SQL, Python/PySpark).
  • Familiarity with transactional lab informatics systems such as ELN, LIMS, and instrument or analytical data platforms.
  • Product ownership or product management experience, including roadmap definition, backlog prioritization, and stakeholder management.
  • Strong communication skills and the ability to bridge scientific, technical, and analytics audiences.
  • Advanced degree in a biology discipline required; PhD in molecular biology, biochemistry, genetics, or immunology preferred.

Strongly Desired

  • Hands-on experience with Databricks (or a comparable lakehouse platform) for managing and delivering data products.
  • Experience leveraging AI to search, discover, and interrogate structured data.
  • Experience with knowledge graphs, ontologies, controlled vocabularies, or semantic data models for connecting scientific entities.
  • Understanding of data lake / lakehouse architectures and modern data engineering practices.
  • Experience working with data scientists and analytics teams to deliver analytics-ready datasets.

Nice to Have

  • Familiarity with data governance frameworks and FAIR data principles in regulated and unregulated environments.
  • Experience with metadata management, data cataloging, and data lineage tooling.
  • Experience with AI/ML workflows and the data requirements that support them.
  • Awareness of regulatory and compliance considerations relevant to pharmaceutical R&D data.

Does this sound like you? Apply now to take your first step towards living the Regeneron Way! We are committed to building a workplace with an inclusive culture. Regeneron is an equal opportunity employer and all  qualified applicants will receive consideration for employment without regard to race, color, religion or belief (or lack thereof), sex, sexual orientation, gender identity or expression, gender reassignment, marital or civil partnership status, civil status, pregnancy or parental status, age, disability, nationality, citizenship status, ethnic or national origin, membership of the Traveler community, familial status, genetic information, military or veteran status, or any other characteristic protected under applicable law. Where required, we will provide reasonable accommodation to applicants with known disabilities or chronic illnesses during the recruitment process, unless such accommodation would impose undue hardship.


Where necessary, we disclose salary ranges for roles in all countries in which we operate.  The final offer will be determined within the relevant range based on the country of employment, specific role level, and your skills and experience. In some countries, collective bargaining agreements (CBAs) may apply and influence certain elements of pay or benefits.  Regeneron offers a competitive and comprehensive total rewards package which may include, depending on country and role: annual bonuses or other incentive plans, equity awards, pension or retirement benefits, 401(k) company match, health and wellness programs, fitness centers, insurance benefits (e.g. medical, dental, vision, life and disability), paid time off, and family support benefits. For additional information about Regeneron benefits in the U.S., please visit https://careers.regeneron.com/en/working-at-regeneron/total-rewards/. For other locations, additional information will be provided during the recruitment process.  If you have any questions, please speak with your recruiter. 


Please be advised that at Regeneron, we believe we do our best work when we are together. For that reason, many roles are required to be performed on‑site. Please speak with your recruiter and hiring manager for more information about on‑site expectations for your role and location.


As part of the recruitment process, certain background checks may be conducted in accordance with the laws of the country where the position is based. The purpose of such checks is to verify certain information prior to the commencement of employment such as identity, right to work and educational qualifications.


For jobs in Canada: this posting is for an existing position.


Salary Range (annually)

$216,100.00 - $360,200.00

Skills Required

  • Advanced degree in a biology discipline (required)
  • BS/BA degree and/or MS degree in a related field
  • 10+ years progressive experience managing scientific laboratory data, ideally within biopharmaceutical or life sciences industry
  • Strong scientific background (chemistry, biology, molecular biology, biochemistry, immunology, pharmacology, or related)
  • Hands-on experience with data modelling and connecting data across multiple source systems
  • Working knowledge of data engineering concepts (data pipelines, ETL/ELT, data transformation)
  • Strong SQL skills
  • Proficiency in a primary Databricks language (e.g., SQL, Python/PySpark)
  • Familiarity with transactional lab informatics systems such as ELN, LIMS, and instrument or analytical data platforms
  • Product ownership or product management experience (roadmap definition, backlog prioritization, stakeholder management)
  • Ability to drive diverse stakeholders to alignment and influence without direct authority
  • Strong communication skills and ability to bridge scientific, technical, and analytics audiences
  • PhD in molecular biology, biochemistry, genetics, or immunology
  • Hands-on experience with Databricks or comparable lakehouse platform
  • Experience leveraging AI to search, discover, and interrogate structured data
  • Experience with knowledge graphs, ontologies, controlled vocabularies, or semantic data models
  • Familiarity with data governance frameworks and FAIR data principles
  • Experience with metadata management, data cataloging, and data lineage tooling
  • Experience with AI/ML workflows and data requirements that support them

Regeneron Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Regeneron and has not been reviewed or approved by Regeneron.

  • Healthcare Strength Medical, dental, and vision coverage is positioned as comprehensive, with Regeneron prescription drugs covered at 100% for those enrolled in the medical plan. Mental health support is also emphasized through EAP access and tools like Talkspace and the Journey app.
  • Equity Value & Accessibility Stock grants are described as available to all employees, strengthening the overall total-rewards package beyond base pay. Long-term incentives and stock-related rewards are repeatedly framed as meaningful components of compensation.
  • Parental & Family Support Paid parental leave is paired with fertility/adoption assistance and childcare-related support such as discounts and nanny services. Additional family-oriented resources extend to elder care, pet care, and education support like college coaching and tutoring.

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The Company
HQ: Tarrytown, NY
15,000 Employees
Year Founded: 1988

What We Do

At Regeneron we believe that when the right idea finds the right team, powerful change is possible. As we work across our expanding global network to invent, develop and commercialize life-transforming medicines for people with serious diseases, we’re establishing new ways to think about science, manufacturing and commercialization. And new ways to think about health. Connect with us so we can learn more about you, and you can learn more about our biopharmaceutical medicines. And join us, as we build a future we believe in. Please visit www.regeneron.com/social-media-terms for information on how to engage with us on social media. An important note about privacy: Regeneron is committed to your privacy and will not ask for sensitive personal information such as social security number, date of birth or bank account details via email or social media.

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