Lead Reactor Physics & Shielding Engineer

Posted 2 Days Ago
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Long Beach, CA, USA
In-Office
Entry level
Greentech • Energy • Utilities
The Role
Leads reactor physics and radiation shielding for a marine compact PWR. Responsibilities include core geometry, enrichment, reactivity control, depletion, kinetics, shutdown margins, criticality safety, source-term development, shielding design, dose mapping, radiation streaming analysis, and design-basis accident dose calculations. The role requires advanced nuclear engineering expertise, production experience with transport and depletion codes, regulatory knowledge, and collaboration in an on-site startup and active manufacturing environment.
Summary Generated by Built In
Our Mission Is Simple: Democratize Access To Clean Energy

Welcome to BlueCore Energy! We are on a relentless mission to democratize access to clean energy. By designing and building advanced floating Pressurized Water Reactors (PWRs) on barges right here in Long Beach, CA, we are bringing scalable, clean, and reliable power to the world. Joining our team means getting in on the ground floor of a revolution in marine small modular reactors (SMRs). If you are passionate, driven, and ready to tackle some of the most exciting challenges of our time, we want you on our team!

Our Values

  • Humility — We hold strong opinions loosely, say "I don't know," ask for help early, and let the best idea win regardless of who it came from.

  • Inclusivity — The best engineering comes from many perspectives. We build a team where everyone is heard, and we mean it.

  • Pragmatism — We solve the real problem in front of us, reuse what already works, and value a tested answer over an elegant one.


About the Role

The Lead Reactor Physics & Shielding Engineer will own the neutronics doctrine and the radiological safety of our marine compact PWR. You will be responsible for defining the core geometry, reactivity control, and shutdown margins, while simultaneously owning the shielding analysis, radiological dose mapping, and source terms.


Responsibilities 
  • Provide comprehensive neutronics support, establishing core geometry, enrichment, lattice, beryllium reflector, and rotating-drum control architecture.

  • Own criticality, reactivity coefficients (MTC, Doppler), kinetics, depletion, and cycle length.

  • Establish and own the shutdown-margin and criticality-safety cases across the full fuel life cycle, including fresh, in-core, spent, and storage phases.

  • Maintain the criticality base deck and the SCALE calculation catalog.

  • Develop core and coolant source terms, and set the activation and decommissioning source term.

  • Design the primary and secondary shields, mapping both occupational and crew doses for a space-constrained vessel.

  • Analyze deep-penetration radiation streaming through structural penetrations utilizing variance reduction techniques. 

  • Supply critical neutronics inputs to Chapters 4, 5, and 15, and calculate control-room and offsite design-basis accident (DBA) doses.

Required Qualifications & Skills
  • MS or PhD in Nuclear Engineering, Reactor Physics, Health Physics, or radiation transport. 

  • Hands-on production depth in a continuous-energy Monte-Carlo transport and criticality code such as CASMO/SIMULATE, SCALE, MCNP, Serpent, or OpenMC.

  • Demonstrated radiation-transport shielding experience utilizing variance reduction tools like MAVRIC/Monaco, MCNP, or OpenMC.

  • Experience with a lattice-physics or depletion code such as CASMO, SCALE, or Serpent. 

  • Proficiency with a nuclide-inventory and decay tool such as ORIGEN or an equivalent software.

  • Deep understanding of NUREG-0800 Standard Review Plan (SRP) sections 4.2, 4.3, 9.1.1, 11.1, and 12.2–12.5. 

Desired Qualifications & Skills
  • Experience with marine compact PWR core physics, specifically drum-controlled or near-boron-free cores.

  • Ability to cross-verify codes and derive Upper Subcritical Limits (USL) via ICSBEP benchmarking per NUREG/CR-6698.

  • Familiarity with RG 1.183 (Alternative Source Term) and GDC 19 to ensure control-room Total Effective Dose Equivalent (TEDE) limits are met. 

  • Experience utilizing ENDF/B (VII.1 / VIII.0) data libraries in criticality and transport evaluations. 

Working at BlueCore Energy

On-Site Requirement: Our team works together at our Long Beach facility, right next to our barge. 

 

Highly Cross-Functional: Startups move fast! You must possess the ability to seamlessly collaborate across multiple teams to rapidly solve problems and keep production moving.

 

Physical & Machinery Requirements: Because we are a hands-on startup, this role may require the ability to perform physical labor, navigate active construction/manufacturing zones, and/or operate heavy machinery and specialized manufacturing equipment as needed.

Skills Required

  • MS or PhD in Nuclear Engineering, Reactor Physics, Health Physics, or Radiation Transport
  • Hands-on production experience with continuous-energy Monte Carlo transport and criticality codes such as CASMO/SIMULATE, SCALE, MCNP, Serpent, or OpenMC
  • Radiation-transport shielding experience using variance-reduction tools such as MAVRIC/Monaco, MCNP, or OpenMC
  • Experience with lattice-physics or depletion codes such as CASMO, SCALE, or Serpent
  • Proficiency with nuclide-inventory and decay tools such as ORIGEN or equivalent software
  • Deep understanding of NUREG-0800 Standard Review Plan sections 4.2, 4.3, 9.1.1, 11.1, and 12.2-12.5
  • Experience with marine compact PWR core physics, including drum-controlled or near-boron-free cores
  • Ability to cross-verify codes and derive Upper Subcritical Limits using ICSBEP benchmarking per NUREG/CR-6698
  • Familiarity with RG 1.183 and GDC 19 for control-room TEDE limits
  • Experience using ENDF/B VII.1 or VIII.0 data libraries in criticality and transport evaluations
  • Ability to work on-site in Long Beach, California and navigate active construction or manufacturing zones
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The Company
6 Employees
Year Founded: 2025

What We Do

Bluecore Energy is developing small modular, water-cooled nuclear reactors for floating energy barges. Its maritime nuclear systems are intended to provide reliable, zero-emission electricity directly to ports, data centers, critical infrastructure, utilities, offshore facilities, and energy-constrained communities. Headquartered at the Port of Long Beach, the company is also exploring a longer-term pathway toward nuclear propulsion for cargo ships.

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