Georgia Institute of Technology

USA
1 Scholarships 109 Programs 3 Degree levels
PhD

PhD in Physiology, Pathology and Related Sciences

DegreePhD
FieldPhysiology, Pathology and Related Sciences.
A

Cost & earnings at Georgia Institute of Technology What students borrow here, and what they go on to earn

You borrow $21,672 median federal debt
You repay $246/mo over 10 years
Graduates earn $102,772 10 yrs after entry
Debt clears in 0.3 yrs of the salary premium
US Department of Education figures See the full breakdown →
F

Physiology graduates earn a median $27,334 Across 159 US programmes, two years after finishing

See the degree grade →

The PhD in Physiology, Pathology and Related Sciences at Georgia Institute of Technology is a research-focused doctorate that trains students to investigate fundamental mechanisms of normal physiology and disease using quantitative, molecular and systems-level approaches. It suits students with strong backgrounds in biological, physical or engineering sciences who seek intensive laboratory research leading to independent scholarship and careers in biomedical research or translational science.

What you'll study

The PhD emphasises deep laboratory research supported by coursework and professional development. Core areas of study include cellular and molecular physiology, systems physiology, pathophysiology of disease, signalling pathways, immunology, bioinformatics and quantitative methods for analysing physiological data.

  • Independent research and dissertation work in a specialised laboratory under a faculty advisor.
  • Advanced coursework in topics such as molecular mechanisms of disease, electrophysiology, quantitative physiology, computational modelling and experimental design.
  • Methods training using contemporary approaches: microscopy, high-throughput sequencing, proteomics, single-cell analysis, physiological recording and image analysis.
  • Seminars, journal clubs and teaching or mentoring experiences to develop communication and leadership skills.
  • Opportunities for interdisciplinary projects that integrate engineering, quantitative biology and translational medicine.

Entry requirements

Applicants are normally expected to hold a strong undergraduate degree (typically a first-class or upper second-class honours equivalent) in biology, physiology, biomedical engineering, biochemistry, or a related discipline. A relevant master’s degree may strengthen an application but is not always required.

  • Demonstrated research experience, typically through undergraduate or postgraduate research projects, is important and often decisive.
  • A statement of research interests describing alignment with faculty expertise and planned research directions.
  • Academic transcripts and letters of recommendation from individuals who can evaluate research potential.
  • Curriculum vitae listing research, publications and technical skills.
  • International applicants must demonstrate English language proficiency through an accepted test or approved exemptions.

Career prospects

Graduates emerge with rigorous experimental and quantitative training suited to a wide range of careers across academia, industry and public service. Typical career paths include:

  • Academic research and tenure-track faculty positions focused on physiology, pathobiology or interdisciplinary biomedical fields.
  • Research and development roles in biotechnology and pharmaceutical companies, including positions in target discovery, preclinical development and translational science.
  • Medical and clinical research careers in hospitals, research institutes and clinical trials organisations.
  • Careers in science policy, regulatory affairs, science communication and technology transfer where deep subject knowledge and research experience are valued.
  • Positions in contract research organisations (CROs), diagnostics companies and computational biology firms applying quantitative skills to physiological data.

Why study at Georgia Institute of Technology

Georgia Tech provides a distinctive environment for physiological and pathophysiological research by combining robust biological training with strong quantitative and engineering capabilities. Students benefit from interdisciplinary collaborations across campus and with neighbouring medical and public health institutions, access to modern core facilities, and a culture that emphasises translation of basic research into technologies and therapies.

Faculty at Georgia Tech work across a range of scales from molecular mechanisms to whole-organism systems, enabling students to design projects that leverage computational modelling, advanced imaging and novel experimental platforms. Professional development resources, seminars and opportunities for industry engagement further prepare graduates for diverse research careers.

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Programme details are indicative and may change — always verify current information with the official university website before applying.