Axle
Axle

Data Scientist II

datafull-timeRemote
SALARY
Not listed
WORK TYPE
remote
JOB TYPE
full-time
INDUSTRY
general
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About the role

<div style="font-size: 10pt; font-family: 'Tahoma';">(ID: 2026-2574)

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<p><strong>Axle</strong> is a bioscience and information technology company that offers advancements in translational research, biomedical informatics, and data science applications to research centers and healthcare organizations nationally and abroad. With experts in biomedical science, software engineering, and program management, we focus on developing and applying research tools and techniques to empower decision-making and accelerate research discoveries. We work with some of the top research organizations and facilities in the country including multiple institutes at the National Institutes of Health (NIH).</p>

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<p><strong>Benefits We Offer:</strong></p>

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<li>100% Medical, Dental & Vision Coverage for Employees</li>

<li>Paid Time Off and Paid Holidays</li>

<li>401K match up to 5%</li>

<li>Educational Benefits for Career Growth</li>

<li>Employee Referral Bonus</li>

<li>Flexible Spending Accounts

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<li>Healthcare (FSA)</li>

<li>Parking Reimbursement Account (PRK)</li>

<li>Dependent Care Assistant Program (DCAP)</li>

<li>Transportation Reimbursement Account (TRN)</li>

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<p style="line-height: normal; margin: 0in;"><span style="font-family: Tahoma; font-size: 10pt;"><span lang="EN">We are seeking a </span><strong><span lang="EN">Data Scientist II</span></strong><span lang="EN"> to join our vibrant team supporting the </span><strong><span lang="EN">National Cancer Institute (NCI)</span></strong><span lang="EN"> at the </span><strong><span lang="EN">NIH</span></strong><span lang="EN"> in Rockville, MD. This role is embedded within NCI's Center for Biomedical Informatics and Information Technology (CBIIT), where you will directly advance cancer research by building the computational infrastructure that scientists depend on every day.</span></span></p>

<p style="line-height: normal; margin: 0in;"><span style="font-family: Tahoma; font-size: 10pt;"><span lang="EN">You will support the full omics data lifecycle across a broad spectrum of modalities, including bulk RNA-seq, single-cell RNA-seq (scRNA-seq), spatial transcriptomics, Digital Spatial Profiling (DSP), whole genome and exome sequencing (WGS/WES), metagenomics, metabolomics, and proteomics, as well as clinical, imaging, and biospecimen data. A core part of this role involves developing workflows that integrate these modalities to support systems-level biological questions, cross-cohort studies, and NCI CBIIT initiatives.</span></span></p>

<p style="line-height: normal; margin: 0in;"><span style="font-family: Tahoma; font-size: 10pt;"><span lang="EN">You will collaborate closely with NCI scientists, bioinformaticians, clinician-researchers, data engineers, software developers, and government stakeholders to ensure analytical infrastructure is FAIR-compliant, containerized, version-controlled, well-documented, and purpose-built for long-term reuse across the research community.</span></span></p>

<p style="line-height: normal; margin: 0in;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Key Responsibilities</strong></span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="e8e9d907e4c7a767253f40257240c4d9d">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Bioinformatics Workflow and Data Pipeline Development:</strong> Design, build, and maintain reproducible pipelines for diverse biomedical data types — including genomic, transcriptomic, single-cell, spatial, proteomic, metagenomic, metabolomic, and clinical datasets. Develop reusable transformation logic and curated datasets supporting analytics, dashboards, APIs, notebooks, and downstream research workflows.</span></p>

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<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Multi-Omics Analysis:</strong> Support NCI CBIIT labs in their analysis workflows including bulk RNA-seq (QC, DEG, GSEA), single-cell RNA-seq (clustering, UMAP/t-SNE, cell type annotation, DEG), and Digital Spatial Profiling (annotation, QC, normalization, spatial deconvolution, volcano plots, heatmaps).</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="e11ba96b80dc41618902fcca25e79d40b">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Data Integration and Lifecycle Support:</strong> Enable reliable data movement from source systems into structured, analysis-ready formats. Support ingestion, curation, metadata capture, source-to-target mapping, schema management, provenance tracking, and long-term maintainability of data products.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="e59cbf736cc664fefd93c2dc7acd64f0f">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Statistical Modeling and Machine Learning:</strong> Apply statistical and ML methods — including hypothesis testing, regression, clustering, PCA, UMAP, t-SNE, and classification — to biomedical datasets. Incorporate AI/LLM-based extraction where appropriate, with clear validation and communication to stakeholders.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="ed34e45938b655f1cb75be6a1f1f9a5d4">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Researcher-Facing Applications and Visualization:</strong> Build and support interactive dashboards (Shiny, Streamlit), notebooks, reports, and APIs enabling researchers to explore multi-omics and clinical data. Support figure generation for QC, differential expression, pathway, and spatial analyses.</span></p>

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<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Collaboration:</strong> Partner with data scientists, bioinformaticians, researchers, developers, and government stakeholders to translate scientific needs into technical specifications, data models, and reusable workflows that accelerate biomedical research.</span></p>

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<p style="line-height: normal; margin: 0in;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Required Qualifications</strong></span></p>

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<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Education & Background:</strong> Bachelor's degree in Data Science, Bioinformatics, Computer Science, Biological Sciences, or a related field (advanced degree preferred), or equivalent experience. Demonstrated experience in a data-intensive role supporting biomedical research or scientific computing.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="ed885a9e3a4b46b1b125a482d5a88fee4">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Data Science and Bioinformatics Expertise:</strong> Strong proficiency in Python and R for analysis, scripting, and visualization. Hands-on experience with at least two omics data types (e.g., bulk RNA-seq, scRNA-seq, spatial transcriptomics, proteomics, metagenomics, GWAS).</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="e7b88e03e41ab977afe3df8fc78e7e473">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Analytical Skills:</strong> Solid understanding of statistical modeling, dimensionality reduction, clustering, differential expression, and pathway analysis. Ability to work with structured, semi-structured, and unstructured data across relational and data lake environments.</span></p>

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<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Collaboration & Communication:</strong> Strong problem-solving skills with the ability to communicate effectively across technical and non-technical audiences. Able to translate scientific needs into technical solutions and clearly articulate risks, assumptions, and limitations.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="e0d793fad9a5202aaedb6f9f6837881ee">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Domain Alignment:</strong> Genuine interest in biomedical and translational research. Ability to quickly learn domain-specific terminology and workflows, with awareness of data governance, privacy, and compliance requirements for clinical and research data.</span></p>

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<p style="line-height: normal; margin: 0in;"> </p>

<p style="line-height: normal; margin: 0in;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Preferred Qualifications</strong></span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="ea09bfc47f5c79645b2996d55abac3fbd">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Data Platform Experience:</strong> Experience building analytics solutions in platforms such as Snowflake, Databricks, or cloud data warehouses, with integrations across databases, APIs, dashboards, and application environments.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="e54ef04047bcc95b97253c4f152cd4245">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Bioinformatics Workflow Tooling:</strong> Experience with workflow and reproducibility tools used in Galaxy, Terra, Nextflow/WDL, Snakemake, Singularity, or CWL. Familiarity with the scverse Python ecosystem (Scanpy, Squidpy, SCIMAP, AnnData) and spatial single-cell analysis methods, including PhenoGraph, Louvain/Leiden clustering, UMAP, and Ripley's L statistic, is a plus.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="e5971f2fdb1c95956c1a999fdad8b6c2c">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Research and Application Enablement:</strong> Experience preparing curated datasets for dashboards, APIs, and web applications. Familiarity with Posit Connect, R/Shiny, Streamlit, Jupyter, or similar platforms is a plus.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="ec1ebd66ee64c260344f3223d3dd95e04">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Cloud, HPC, Storage, and Automation:</strong> Experience with AWS (EC2, S3, Lambda), object storage, relational databases, scheduled jobs, API integrations, and secure data movement. Familiarity with HPC environments, SLURM/SGE, or NIH Biowulf is preferred.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="eb44170d84c82bd28a7dad2405c259c85">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Biomedical Domain Knowledge:</strong> Background in biomedical research, clinical research, or healthcare analytics. Familiarity with standards such as HL7/FHIR, CDISC, or OMOP, and experience with clinical, genomic, or biospecimen data is a plus.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="e3b0df3dc16a62703e93819fcd72cb6f1">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Governance and Reproducibility:</strong> Experience with metadata management, data lineage, open-source code release, containerized analyses, and secure handling of de-identified or access-controlled research datasets.</span></p>

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<li class="ck-list-marker-font-size ck-list-marker-font-family" data-list-item-id="e33c0d20f4b58cbd549cdbc8bb5d71990">

<p style="line-height: normal; margin: 0in 0in 0in 0;"><span style="font-family: Tahoma; font-size: 10pt;"><strong>Training and Scientific Enablement:</strong> Experience creating documentation, training materials, or workshops for researchers and non-coder audiences. Ability to support tool adoption and explain workflows and results clearly is strongly preferred.</span></p>

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