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Position Summary:
We have an exciting opportunity to join our team as a Senior Data Science Analyst/Engineer.
As part of the Complement-ARIE program, the NYU-Sage New Approach Methodologies (NAMs) Data Hub and Coordinating Center will create a controlled access platform for researchers to share and analyze data from NAMs approaches. The program will build tools to standardize and harmonize NAMs data, store it securely, and provide researchers with powerful analytical and visualization tools.
The successful candidate will co-lead the design and implementation of a comprehensive metadata framework ensuring FAIR (Findable, Accessible, Interoperable, Reusable) compliance and data discoverability across the NAMs Data Hub. This position will extend the C2M2 (Crosscut Metadata Model) to create an integrated framework for NAMs data, develop Common Data Elements (CDEs), integrate terminologies and ontologies for NAMs representation, embed provenance tracking, and author and maintain metadata schemas defining data structures and validation rules to ensure interoperability across all NAMs datasets.
Job Responsibilities:
Metadata and Ontology Workflows
Minimum Qualifications:
To qualify you must have a Masters degree in a quantitative discipline (Biomedical Informatics, Computer Science, Machine Learning, Applied Stascs, Mathematics or similar field) and
5-7 years of experience in machine learning/ data science.
Proficiency in at least one programming language (Python, R) and machine learning tools (scikitlearn, R)
Knowledge of predictive modeling and machine learning concepts, including design, development, evaluation, deployment and scaling to large datasets
Familiarity with computing models for big data Hadoop / MapReduce, Spark etc.
Knowledge of databases (Relational / SQL, NOSQL MongoDB etc.)
Preferred Qualifications:
PhD degree
Demonstrated track record of successfully applying metadata and data standards to research or operational datasets in any biomedical field, with tangible outcomes such as improved interoperability, FAIRness assessments, or adoption by external stakeholders
Deep knowledge of FAIR principles and their practical application
Strong understanding of metadata standards including Dublin Core, DataCite, DCAT, PROV-O, and Schema.org
Experience with RDF, SKOS, SPARQL, and semantic web standards for metadata representation
Knowledge of controlled vocabularies, taxonomies, and ontologies for metadata annotation
Experience with schema definition languages (e.g., LinkML) and validation frameworks
Knowledge of and practical experience with biomedical terminologies and ontologies
Strong analytical skills for metadata modeling and information architecture
Excellent documentation skills with ability to create clear technical specifications and guidelines
Strong communication skills for training and stakeholder engagement
Demonstrated ability to work collaboratively in multi-institutional research environments
Experience with version control systems for managing schemas and documentation
Experience with Common Fund Data Ecosystem (CFDE) and the C2M2 metadata model
Understanding of biomedical data types including genomics, imaging, and laboratory data
Knowledge of OMOP CDM and Standardized Vocabularies
Published work on metadata standards or FAIR data implementation
Experience coordinating metadata and data standardization initiatives across multiple institutions
Experience with automated metadata extraction and enrichment tools
Familiarity with AI/ML tools and methods, including their application to metadata enrichment, automated annotation, or standards development workflows
Familiarity with NAMs methodologies and alternative testing approaches
Qualified candidates must be able to effectively communicate with all levels of the organization.
NYU Grossman School of Medicine provides its staff with far more than just a place to work. Rather, we are an institution you can be proud of, an institution where you'll feel good about devoting your time and your talents. At NYU Langone Health, we are committed to supporting our workforce and their loved ones with a comprehensive benefits and wellness package. Our offerings provide a robust support system for any stage of life, whether it's developing your career, starting a family, or saving for retirement. The support employees receive goes beyond a standard benefit offering, where employees have access to financial security benefits, a generous time-off program and employee resources groups for peer support. Additionally, all employees have access to our holistic employee wellness program, which focuses on seven key areas of well-being: physical, mental, nutritional, sleep, social, financial, and preventive care. The benefits and wellness package is designed to allow you to focus on what truly matters. Join us and experience the extensive resources and services designed to enhance your overall quality of life for you and your family.
NYU Grossman School of Medicine is an equal opportunity employer and committed to inclusion in all aspects of recruiting and employment. All qualified individuals are encouraged to apply and will receive consideration. We require applications to be completed online.
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NYU Langone Health provides a salary range to comply with the New York state Law on Salary Transparency in Job Advertisements. The salary range for the role is $121,792.22 - $162,052.80 Annually. Actual salaries depend on a variety of factors, including experience, specialty, education, and hospital need. The salary range or contractual rate listed does not include bonuses/incentive, differential pay or other forms of compensation or benefits.
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Required Skills
Required Experience