Idaho State University

USA
1 Scholarships 131 Programs 3 Degree levels
Masters

Master's in Nuclear Engineering

Offered at Idaho State University, USA
DegreeMasters
FieldNuclear Engineering.
F

Cost & earnings at Idaho State University What students borrow here, and what they go on to earn

You borrow $20,039 median federal debt
You repay $228/mo over 10 years
Graduates earn $45,608 10 yrs after entry
Debt clears in 3.3 yrs of the salary premium
US Department of Education figures See the full breakdown →

The Master of Science in Nuclear Engineering at Idaho State University is a graduate programme designed to develop technical competence in nuclear science and engineering, including reactor physics, radiation detection, and nuclear materials. It suits graduates with a background in engineering, physics or a related discipline who want to pursue research, technical roles in industry or careers with national laboratories and regulatory bodies.

What you'll study

The programme provides a balance of advanced coursework and research or project work. Students study core topics such as reactor physics and dynamics, radiation transport and shielding, radiation detection and measurement, nuclear materials and fuel behaviour, and thermal hydraulics. Computational methods for nuclear engineering, instrumentation and controls, and radiation protection and health physics are commonly offered as either required courses or electives.

Coursework is augmented by laboratory work and practical training in radiation detection and measurement, computational labs using transport and reactor analysis codes, and opportunities for hands‑on experience through partnerships with research centres. Students may choose a thesis track focused on original research supervised by faculty, or a non‑thesis/project track emphasising advanced coursework and an applied capstone project.

  • Core areas: reactor theory, radiation transport, radiation protection, nuclear materials, thermal hydraulics
  • Methods and tools: computational modelling, instrumentation and measurements, data analysis
  • Options: thesis (research) or non‑thesis (project/advanced coursework)

Entry requirements

Applicants are expected to hold a bachelor's degree in nuclear engineering, mechanical engineering, electrical engineering, physics, or a closely related technical discipline. A competitive undergraduate record in mathematics, physics and engineering fundamentals is required. Official transcripts, a statement of purpose outlining research interests and career goals, and letters of recommendation are required as part of the application.

Where relevant, applicants may be asked to demonstrate proficiency in calculus, differential equations and basic programming or numerical methods. Standardised test requirements (for example GRE) and minimum GPA expectations are set by the university and can vary by admission cycle; international applicants must meet the university's English language proficiency requirements.

Career prospects

Graduates from the Master's in Nuclear Engineering typically move into technical and professional roles across the nuclear sector and related industries. Typical career destinations include reactor operations and engineering, plant licensing and regulatory compliance, radiation protection and health physics, nuclear materials testing and qualification, and instrumentation and controls.

Other common pathways include research and development positions at national laboratories and research centres, consulting roles in energy and safety, and technical positions in medical and industrial radiography, instrumentation companies, and government agencies. Graduates who choose the thesis route may also continue to doctoral studies or pursue academic and research careers.

Why study at Idaho State University

Idaho State University offers the Master of Science in Nuclear Engineering with strong links to regional and national research organisations, providing access to collaborative projects and practical internship opportunities. The programme emphasises applied training and small cohort supervision, enabling close mentoring from faculty with expertise in reactor analysis, radiation detection, and nuclear materials.

Students benefit from laboratory facilities, computational resources and industry connections that support hands‑on learning and professional development. The department's collaborations with national laboratories and industry partners enhance prospects for internships, research placements and employment after graduation.

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