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Spatial Transcriptomics Jobs in Nashville, TN (NOW HIRING)

By integrating single-cell and spatial transcriptomics, CRISPR genome engineering, tissue clearing, advanced microscopy, and functional studies in zebrafish and mouse models, we seek to identify ...

Spatial Transcriptomics information

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$47.3K

$196.5K

$386.4K

How much do spatial transcriptomics jobs pay per year?

As of Aug 27, 2026, the average yearly pay for spatial transcriptomics in Nashville, TN is $196,529.00, according to ZipRecruiter salary data. Most workers in this role earn between $75,800.00 and $386,400.00 per year, depending on experience, location, and employer.

What is spatial transcriptomics?

Spatial transcriptomics is an advanced technique that allows scientists to measure gene expression within the spatial context of tissue samples. Unlike traditional RNA sequencing, which loses information about where each gene is expressed, spatial transcriptomics preserves the physical location of gene activity in tissues. This helps researchers better understand how cells function within their native environments and interact with neighboring cells, which is especially valuable in fields like cancer research, neuroscience, and developmental biology. The method combines microscopy, molecular biology, and computational analysis to produce detailed maps of gene expression.

What are the key skills and qualifications needed to thrive as a spatial transcriptomics scientist?

To thrive as a Spatial Transcriptomics Scientist, you need a strong background in molecular biology, genomics, and bioinformatics, typically supported by an advanced degree in a life science field. Familiarity with spatial transcriptomics platforms (such as 10x Genomics Visium), next-generation sequencing (NGS) technologies, and data analysis tools like R or Python is essential. Strong problem-solving skills, attention to detail, and effective communication are important soft skills for collaborating on interdisciplinary research projects. These skills and qualities are crucial for generating high-quality spatial gene expression data and translating findings into meaningful biological insights.

What are some common challenges faced by professionals working in spatial transcriptomics, and how can they be addressed?

Professionals in spatial transcriptomics often encounter challenges related to handling large, complex datasets and integrating spatial information with gene expression data. Ensuring high-quality sample preparation and mastering advanced imaging or sequencing technologies are also frequent hurdles. These challenges can be addressed by collaborating closely with multidisciplinary teams—including bioinformaticians, molecular biologists, and imaging specialists—and staying up-to-date with the latest software tools and protocols. Continuous learning and effective communication within the team are key to overcoming technical and analytical obstacles in this rapidly evolving field.

What are popular job titles related to Spatial Transcriptomics jobs in Nashville, TN?

For Spatial Transcriptomics jobs in Nashville, TN, the most frequently searched job titles are:

Infographic showing various Spatial Transcriptomics job openings in Nashville, TN as of August 2026, with employment types broken down into 100% Full Time. Highlights an 100% In-person job distribution, with an average salary of $196,529 per year, or $94.5 per hour.

Research Specialist, Senior

Nashville, TN • On-site


Vanderbilt University
Colleges, Universities, and Professional Schools • 5 - 10K employees

8.0

Company rating: 8.0 out of 10

Based on 40 frontline employees who took The Breakroom Quiz

190th of 623 rated colleges and universities

Good employer

Recommended by parents

Respectful managers


Full-time

This job post has expired 1 day ago. Applications are no longer accepted.


Job description


The Spraggins group develops integrated molecular imaging technologies to elucidate the molecular basis of health and disease. Modern instrumentation and computing capabilities have enabled researchers to move beyond reductionist biology and, instead, probe how the components of biological entities (e.g., molecules, cells, and tissues) interact globally to reveal the underlying biology of disease. This systems biology approach has been accelerated by advancements in high-throughput 'omics' technologies, however, genetic and molecular information are only part of the story. The challenge lies in understanding how these parts interact and how perturbations to the system relate to disease. To address this challenge, we are advancing instrumental capabilities and developing the computational tools necessary to integrate and mine multimodal data sets that bring together imaging mass spectrometry, highly multiplexed immunofluorescence microscopy, and spatial transcriptomics.
The Spraggins laboratory is part of the Mass Spectrometry Research Center (MSRC) and Department of Cell & Developmental Biology at Vanderbilt University. The MSRC consists of two research groups, including the Spraggins and Schey groups, and three cores that offer analytical services in proteomics, small molecules, and tissue imaging using mass spectrometry. The MSRC conducts collaborative research programs with investigators in nearly every Center and department in the Medical Center and Vanderbilt University as well as many trans-institutional initiatives. Team members have access to state-of-the-art instrumentation including 6 imaging mass spectrometers, a CODEX highly multiplexed immunofluorescence platform, 2 fluorescence slide scanners, a laser capture microdissection system, a Xenium in situ platform, and a GeoMx spatial transcriptomics instrument, as well as a collection of commercial and custom software for the analysis of imaging, multi-omics, and microscopy data. The group's research is embedded in large national consortia, including the Human BioMolecular Atlas Program (HuBMAP), the Kidney Precision Medicine Project (KPMP), and the Human Tumor Atlas Network (HTAN).
Key Functions and Expected Performance:
Data Analysis and Method Development
  • Develop, validate, document, and maintain computational pipelines for multimodal biomedical imaging data, including preprocessing, quality control, normalization, image registration, cell segmentation, and feature extraction.
  • Analyze single-cell and spatial transcriptomics data, including clustering, marker-based cell type annotation, neighborhood enrichment, and cell-cell interaction analysis.
  • Integrate imaging mass spectrometry, multiplexed immunofluorescence microscopy, and spatial transcriptomics data acquired from the same or serial tissue sections into common coordinate frameworks.
  • Apply statistical and machine learning approaches to identify molecular and spatial features associated with disease state, progression, or treatment response.
  • Design and execute analyses independently, selecting appropriate methods and evaluating model performance and robustness to confounding variables.
  • Work closely with team members to interpret data generated by imaging and 'omics assays and to inform experimental design.
  • Produce data visualizations and publication-quality figures for presentations, manuscripts, and grant applications.

Data and Software Management
  • Management of large imaging and multi-omics datasets, including organization, storage, backup, and metadata capture.
  • Execution of analysis workflows in high-performance and cloud computing environments.
  • Use of version control and reproducible research practices for all analysis code.
  • Preparation and submission of data and derived products to consortium data portals and public repositories in accordance with FAIR data standards.
  • Record-keeping and documentation of analytical protocols.

Collaborations and Education
  • Assist team members with implementing biocomputational, single-cell, and spatial transcriptomics workflows.
  • Train students, postdoctoral fellows, and staff on biocomputational tools and analysis methods.
  • Effective delivery of technical progress reports and presentations in written and oral form to research staff, faculty, and consortium working groups.
  • Communicate regularly, effectively, and professionally with the Principal Investigator, research team, and internal and external collaborators.

Supervisory Relationships:
  • This position does not have formal supervisory responsibility.
  • This position reports directly to Dr. Spraggins.
  • This position is expected to provide technical guidance and day-to-day project direction to students, interns, and junior staff.

Education and Certifications:
  • Bachelor's degree in a biological, physical, computational, or engineering discipline is required.
  • Master's degree or higher in bioinformatics, computational biology, biomedical engineering, data science, or a related field is preferred.

Experience and Qualifications:
  • 2 years of relevant research experience or the equivalent is required.
  • 4 years of relevant research experience is preferred.
  • Proficiency in Python and/or R for scientific data analysis is required.
  • Demonstrated track record of independently executing complex computational analyses of biological data is required.
  • Experience with single-cell and/or spatial transcriptomics analysis, e.g., Scanpy, Seurat, Squidpy, scimap is preferred.
  • Experience with biomedical image analysis and cell segmentation, e.g., QuPath, Napari, StarDist, Mesmer, scikit-image, OpenCV is preferred.
  • Experience with whole-slide image handling and cross-modality image registration is preferred.
  • Experience with machine learning and deep learning frameworks, e.g., scikit-learn, PyTorch is preferred.
  • Practical knowledge of Linux commands, shell scripting, and high-performance computing schedulers, e.g., Bash, SLURM is preferred.
  • Practical knowledge of version control and collaborative software development, e.g., Git and GitHub is preferred.
  • Experience integrating multimodal or multi-omic biomedical datasets is preferred.
  • Experience working within a multi-institutional research consortium or other large collaborative research program is preferred.
  • Record of scientific communication through publications, preprints, posters, or conference presentations is preferred.
  • Prior experience mentoring or training students, interns, or junior staff is preferred.

Skills:
  • Strong organizational skills and the ability to manage multiple concurrent projects and deadlines.
  • Ability to work independently and to take ownership of analytical projects from design through publication.
  • Ability to learn and assist in the development of new methods, protocols, and technologies in a rapidly evolving field.
  • Strong written and oral scientific communication skills, including the ability to communicate technical results to interdisciplinary audiences.
  • Ability to work collaboratively as part of a large, multidisciplinary team.

About Us
At Vanderbilt University , our work - regardless of title or role - is in service to an important and noble mission in which every member of our community serves in advancing knowledge and transforming lives on a daily basis. Located in Nashville, Tennessee, on a 330+ acre campus and arboretum dating back to 1873, Vanderbilt is proud to have been named as one of "America's Best Large Employers" as well as a top employer in Tennessee and the Nashville metropolitan area by Forbes for several years running. We welcome those who are interested in learning and growing professionally with an employer that strives to create, foster and sustain opportunities as an employer of choice.
We understand you have a choice when choosing where to work and pursue a career. We understand you are unique and have a story. We want to hear it. We encourage you to apply today so that you might become a part of our story.
Vanderbilt University is an equal-opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, or status as a protected veteran, or any other characteristic protected by law.


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