Computational Biologist I, Clinical Data Mining (CDM)

  • Department: Informatics & Information Technology

    Location: New York, NY

    Salary: 83,800.00 - 134,000.00 USD Annual

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Job details

About Us:

   

The people of Memorial Sloan Kettering Cancer Center (MSK) are united by a singular mission: ending cancer for life. Our specialized care teams provide personalized, compassionate, expert care to patients of all ages. Informed by basic research done at our Sloan Kettering Institute, scientists across MSK collaborate to conduct innovative translational and clinical research that is driving a revolution in our understanding of cancer as a disease and improving the ability to prevent, diagnose, and treat it. MSK is dedicated to training the next generation of scientists and clinicians, who go on to pursue our mission at MSK and around the globe.

 

Exciting Opportunity at MSK: At Memorial Sloan Kettering (MSK), we're not only changing the way cancer is treated, we're changing the way the world understands it. To help make cancer data more accessible, actionable, and impactful at MSK and beyond, we are seeking a Computational Biologist to join the Clinical Data Mining (CDM) team, one of several teams supporting the Cancer Data Science Initiative (CDSI).

In this role, you will collaborate with researchers, oncologists, data scientists, and engineers across MSK to develop machine learning (ML) and natural language processing (NLP) solutions that automate the extraction, standardization, and curation of clinically relevant data from unstructured sources. The mission of CDSI is to accelerate translational research by transforming real-world clinical data into high-quality, research-ready resources. Through the abstraction and integration of patient data from diverse clinical systems, CDSI enables clinicians, biologists, and computational scientists across the institution to access de-identified data that fuels discovery and innovation. Teams supporting CDSI have also developed widely adopted cancer research resources, including cBioPortal and OncoKB, which are used by thousands of researchers and clinicians worldwide.

As a Computational Biologist, your work will directly support institutional research projects, including enterprise curation, health disparities research supported by the Geoffrey Canada Center for Translational Cancer Disparities Research, and Cancer AI Alliance (CAIA) use cases. Through these efforts, you will help generate and curate data resources that power scientific discovery, advance cancer research, and ultimately improve patient outcomes.

Role Overview:

  • Partner with clinicians, researchers, engineers, and data scientists to support institutional cancer research initiatives.

  • Develop and maintain data pipelines to extract, transform, and integrate clinical, genomic, imaging, and other healthcare datasets.

  • Build and deploy machine learning (ML), natural language processing (NLP), and AI-based solutions for clinical data extraction and curation.

  • Leverage large language models (LLMs) and emerging AI technologies to improve data abstraction and research workflows.

  • Collaborate with cross-functional teams to translate research questions into scalable computational solutions.

  • Support enterprise curation efforts that make high-quality clinical data available to investigators across MSK.

  • Contribute to the development of cloud-based infrastructure and analytics tools supporting translational research.

Key Qualifications:

  • Bachelor's degree in Computer Science, Bioinformatics, Biomedical Engineering, Computational Biology, Data Science, or a related discipline with 2+ years of relevant experience; or a Master's degree in a related field.

  • Experience programming in Python and/or R.

  • Working knowledge of SQL and relational databases.

  • Experience applying machine learning and/or NLP methodologies.

  • Experience working with source control systems such as Git/GitHub.

  • Experience using cloud platforms or cloud-based data environments.

  • Strong communication and collaboration skills with both technical and non-technical stakeholders.

Preferred Qualifications:

  • M.S. or Ph.D. in Computer Science, Bioinformatics, Biomedical Engineering, Computational Biology, or a related field.

  • Experience building and deploying machine learning models in research or production environments.

  • Knowledge of NLP methodologies and AI-driven applications.

  • Experience with large language models (LLMs), prompt engineering, and AI APIs.

  • Familiarity with healthcare, clinical research, bioinformatics, cancer genomics, or clinical informatics.

  • Experience with cloud technologies such as AWS, Azure, Google Cloud Platform, or Databricks.

  • Experience working with electronic health records (EHRs), clinical data warehouses, or healthcare datasets.

Core Skills:

  • Passion for applying computational methods to cancer research.

  • Strong analytical and problem-solving abilities.

  • Experience collaborating across multidisciplinary teams.

  • Effective communication skills with technical and non-technical audiences.

  • Interest in AI, machine learning, and clinical data science.

  • Adaptable, self-motivated, and eager to learn.

  • Ability to manage multiple priorities in a fast-paced environment.

Additional Information:

  • Schedule: Full-time, 37.5 hours per week

  • Location: 323 East 61st Street, New York, NY (Hybrid, 2 days onsite)

  • Reporting To: Senior Computational Biologist II

Helpful Links:

 

Pay Range: $83,800.00 - $134,000.00

 

FSLA Status: Exempt

 

Closing:

At MSK, we believe in fair, competitive pay that reflects your job, experience, and skills.

MSK is an equal opportunity and affirmative action employer committed to diversity and inclusion in all aspects of recruiting and employment. All qualified individuals are encouraged to apply and will receive consideration without regard to race, color, gender, gender identity or expression, sexual orientation, national origin, age, religion, creed, disability, veteran status or any other factor which cannot lawfully be used as a basis for an employment decision.  

Federal law requires employers to provide reasonable accommodation to qualified individuals with disabilities. Please tell us if you require a reasonable accommodation to apply for a job or to perform your job. Examples of reasonable accommodation include making a change to the application process or work procedures, providing documents in an alternate format, using a sign language interpreter, or using specialized equipment.

Application Process

  • 01

    Step 1:

    Complete an Online Application

  • 02

    Step 2:

    Interview Process

  • 03

    Step 3:

    Provide References

  • 04

    Step 4:

    Extension of Job Offer

  • 05

    Step 5:

    Onboarding

  • 06

    Step 6:

    New Employee Orientation

Computational Biologist I, Clinical Data Mining (CDM)

Department:Informatics & Information Technology

Location: New York, NY

Apply now