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Biological Data Science Internship Jobs in Texas

Biological data related to structure, function, behavior, and tailored applications will be used to ... A Work Environment Where You Succeed For brilliant minds in science, technology, engineering and ...

Biological data related to structure, function, behavior, and tailored applications will be used to ... A Work Environment Where You Succeed For brilliant minds in science, technology, engineering and ...

Data Science at State Farm: As a Data Scientist at State Farm, you will serve as a subject matter ... Lead/mentor other data scientists, interns, and other technical work teams * Make strategic ...

... data science. * Interns will work in a fast-paced telecom environment shaped by emerging technologies, Network APIs, competition, and industry transformation. Ericsson is a global telecoms leader ...

Knowledge of biology or genetics is preferred but not required What You'll Do As an ICADS Postdoc Fellow, you will: * Conduct innovative cancer-focused research within a multidisciplinary team.

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Biological Data Science Internship information

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$8

$16

$22

How much do biological data science internship jobs pay per hour?

As of Aug 23, 2026, the average hourly pay for biological data science internship in Texas is $16.12, according to ZipRecruiter salary data. Most workers in this role earn between $13.41 and $17.93 per hour, depending on experience, location, and employer.

What is a biological data science internship?

A Biological Data Science Internship is a temporary position for students or recent graduates to gain practical experience working at the intersection of biology and data science. Interns typically analyze biological datasets using computational tools, statistical methods, and programming languages such as Python or R. They may work on projects involving genomics, bioinformatics, drug discovery, or ecological modeling. The internship helps individuals develop both technical and domain-specific skills, preparing them for future careers in research, biotechnology, or academia.

What types of projects do interns typically work on during a biological data science internship?

Biological Data Science interns often work on projects involving the analysis of large biological datasets, such as genomic, proteomic, or clinical data. Typical tasks may include cleaning and preprocessing data, developing statistical models, and visualizing complex biological patterns. Interns frequently collaborate with both data scientists and biologists, gaining exposure to interdisciplinary teamwork and real-world research challenges. This hands-on experience helps interns build both their technical and scientific communication skills, making it a valuable stepping stone for careers in bioinformatics, computational biology, or related fields.

What are the key skills and qualifications needed to thrive as a biological data science intern, and why are they important?

To thrive as a Biological Data Science Intern, you need a solid background in biology, statistics, and programming, often supported by coursework or a degree in bioinformatics or a related field. Familiarity with tools like Python, R, and data analysis platforms, as well as experience with genomic databases and visualization software, is typically expected. Strong problem-solving, attention to detail, and teamwork skills help interns excel in collaborative research environments. These abilities enable accurate analysis of complex biological data and contribute to meaningful scientific discoveries.

What is the difference between Biological Data Science Internship vs Biological Data Analyst?

AspectBiological Data Science InternshipBiological Data Analyst
Required CredentialsUndergraduate or graduate student in biology, data science, or related fieldBachelor's or master's in biology, data science, or related field; sometimes requires experience
Work EnvironmentResearch labs, biotech companies, academic institutions, often temporary or project-basedCorporate or research settings, ongoing role with regular hours
Employer & Industry UsageInternships offered by biotech firms, research institutions, universitiesFull-time roles in biotech, pharmaceuticals, research organizations

The Biological Data Science Internship is typically a temporary, entry-level position aimed at students gaining practical experience, whereas a Biological Data Analyst is a full-time role requiring more experience and responsibility. Internships focus on learning and skill development, while analysts handle ongoing data analysis tasks in professional settings.

What cities in Texas are hiring for Biological Data Science Internship jobs?

Cities in Texas with the most Biological Data Science Internship job openings:

Infographic showing various Biological Data Science Internship job openings in Texas as of August 2026, with employment types broken down into 1% As Needed, 87% Full Time, 10% Part Time, and 2% Contract. Highlights an 85% Physical, 4% Hybrid, and 11% Remote job distribution, with an average salary of $33,535 per year, or $16.1 per hour.

Research Fellow, Biochemistry & Molecular Biology

UTMB Health

Galveston, TX • On-site

Full-time

Re-posted 28 days ago


UTMB Health rating

7.3

Company rating: 7.3 out of 10

Based on 168 frontline employees who took The Breakroom Quiz

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Job description

Job Summary

To conduct advanced, independent, and collaborative research within the Department of Biochemistry & Molecular Biology, contributing to the design, prototyping, and evaluation of computational and artificial intelligence systems that support biological discovery.

The candidate will design, prototype, and evaluate artificial intelligence systems at the interface of biological data analysis and large language models. Work will focus on developing computational approaches that combine domain-specific biological knowledge, structured scientific datasets, and modern LLM-based reasoning or retrieval systems.

Job Duties and Responsibilities

Core duties:

       Conducts independent and collaborative research under the direction of the principal investigator.

       Designs and carries out experiments and computational analyses.

       Analyzes and interprets research data and verifies results.

       Prepares manuscripts, technical documentation, and presentations for publication and scientific meetings.

       Maintains accurate research records and documentation.

       Mentors students and junior staff as needed.

       Adheres to institutional research, safety, and compliance policies.

       Performs related duties as required.

Project responsibilities may include:

1.    System design. Develop architectures for AI systems that integrate biological datasets, scientific literature, experimental metadata, and large-language-model capabilities. These systems may include retrieval-augmented generation, agentic workflows, structured reasoning pipelines, or domain-specific interfaces for biological research.

2.    Biological data integration. Identify, organize, and prepare relevant biological data sources for use in AI workflows. These may include genomic, epigenomic, proteomic, imaging, structural biology, or literature-derived datasets, depending on project needs.

3.    LLM-based workflow development. Design and implement LLM-powered tools for scientific question answering, hypothesis generation, literature analysis, experimental planning, data interpretation, and automated report generation. The candidate will evaluate model outputs for scientific accuracy, traceability, and usability.

4.    Prototype implementation. Build working prototypes, scripts, notebooks, APIs, or lightweight applications demonstrating the proposed AI systems. Prototypes should be documented sufficiently to allow the project team to review, test, and further develop them.

5.    Evaluation and validation. Develop practical evaluation criteria for biological and scientific AI systems, including accuracy, reproducibility, citation grounding, failure modes, hallucination risk, and usefulness to researchers. The candidate will test systems on representative biological use cases and summarize results.

6.    Documentation and recommendations. Prepare clear technical documentation describing system architecture, data inputs, model choices, workflows, limitations, and recommended next steps. Documentation should be suitable for internal scientific and technical review.

7.    Collaboration. Meet periodically with project leadership and relevant scientific or computational collaborators to review progress, refine priorities, and incorporate feedback.

Deliverables

The candidate will provide one or more of the following, as requested by the project team:

       Technical design documents for AI systems spanning biology and LLMs.

       Prototype software, notebooks, scripts, or application components.

       Curated or structured biological data inputs for AI workflows.

       Evaluation reports describing system performance, limitations, and risks.

       Written recommendations for future development, deployment, or publication.

       Periodic progress summaries.

Expected Outcome

The work is expected to produce practical designs and early-stage prototypes for AI systems that support biological research using large language models, with emphasis on scientific rigor, interpretability, reliable grounding in source material, and usability by researchers.

Department Marketing Statement

We are seeking a highly motivated Research Fellow to help build artificial intelligence systems at the intersection of biology and large language models within the Department of Biochemistry & Molecular Biology. This role is ideal for someone who enjoys working across genomics, scientific data, and modern AI, and who wants hands-on involvement in designing, prototyping, and evaluating tools that accelerate biological discovery while upholding scientific rigor and reliable grounding in source material.


MINIMUM QUALIFICATIONS:
Master's degree in bioinformatics, computational biology, computer science, genomics, biochemistry, molecular biology, or a related field, or equivalent research experience.


SALARY:
Actual salary commensurate with experience or range if discussed and approved by hiring authority.

EQUAL EMPLOYMENT OPPORTUNITY:
UTMB Health strives to provide equal opportunity employment without regard to race, color, religion, age, national origin, sex, gender, sexual orientation, gender identity/expression, genetic information, disability, veteran status, or any other basis protected by institutional policy or by federal, state or local laws unless such distinction is required by law. As a Federal Contractor, UTMB Health takes affirmative action to hire and advance protected veterans and individuals with disabilities.

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