Full-Time

Reactor Software Engineer

Updated on 9/3/2026

Antares Nuclear

Antares Nuclear

51-200 employees

Develops autonomous microreactors for remote power

Compensation Overview

$120k - $160k/yr

No H1B Sponsorship

Los Angeles, CA, USA

In Person

The company aims to maximize in-person team time; no explicit remote or hybrid schedule is stated.

US Citizenship Required

Bachelor's

Category
Software Engineering
Required Skills
gRPC
Rust
Python
Git
Data Structures & Algorithms
Computer Networking
Docker
C/C++
Linux/Unix

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Requirements
  • A bachelor's degree in Computer Science, Computer Engineering, Electrical Engineering, Software Engineering, or a related technical field is required.
  • Experience developing clean, maintainable production or project software for hardware-integrated, distributed, embedded, robotics, aerospace, automotive, industrial, or mission-critical systems is required.
  • Software Engineer I candidates must have 0-2 years of experience; Software Engineer II candidates must have 2-5 years of experience.
  • Strong Python 3 fundamentals are required, including typed code, dataclasses or equivalent structured data models, exceptions, testing, and idiomatic code organization.
  • Working knowledge of data structures, object-oriented design fundamentals, and readable, testable, maintainable software interfaces is required.
  • Familiarity with concurrent, asynchronous, or multi-process software patterns, including asyncio, threads, multiprocessing, event loops, inter-process communication, networking, or message passing, is required.
  • Experience integrating software with sensors, controllers, data acquisition systems, instruments, power supplies, embedded systems, simulations, or other hardware-facing interfaces is required.
  • Ability to design clear data models, state machines, command flows, and testable system behaviors is required.
  • Strong debugging skills across software, hardware, and system-integration boundaries are required.
  • Experience with Git and collaborative engineering workflows, including pull requests, code review, and technical documentation, is required.
  • Comfort working where requirements evolve through prototype testing, hardware bring-up, and cross-functional design tradeoffs is required.
  • Strong written and verbal communication skills are required when working across software, electrical, controls, test, and systems engineering teams.
Responsibilities
  • Develop reactor software for data acquisition, telemetry processing, command handling, state management, fault response, operator interaction, and automated test environments.
  • Own features end-to-end from test specifications and interface definitions through implementation, code review, integration, and documentation.
  • Build software that drives real instruments and in-memory simulations while keeping controls and interfaces consistent across simulation, bench, hardware-in-the-loop, hardware-in-the-loop testing, and reactor environments.
  • Implement runtime control features such as timeline scheduling, event and gate handling, mode transitions, command validation, command feedback, and telemetry streaming.
  • Create and maintain software interfaces for hardware adapters, telemetry sinks, data acquisition systems, sensors, controllers, operator tools, and external data systems.
  • Implement data validation and quality logic so telemetry can be marked as valid, invalid, stale, unavailable, suspect, or otherwise actionable by downstream software and operator tools.
  • Develop fault-aware software behavior, including detection, classification, containment, recovery, reset behavior, diagnostics, logging, and observability.
  • Write automated tests that validate real system behavior, including hardware-facing workflows whenever practical.
  • Support simulation, hardware-in-the-loop, hardware-in-the-loop testing, hardware bring-up, integrated reactor testing, and debugging across software and hardware boundaries.
  • Collaborate with electrical, embedded, controls, software, test, and systems teams to define interface control documents, communication schemas, data dictionaries, and integration test plans.
  • Participate in design reviews, code reviews, test readiness reviews, and root-cause investigations during hardware integration and deployment campaigns.
Desired Qualifications
  • Experience with hardware or instrumentation software, including data acquisition systems, sensors, serial devices, laboratory benches, power supplies, controllers, or custom test stands.
  • Experience with event-driven systems, command and control software, telemetry pipelines, state-machine architectures, autonomous mode management, or fault-aware system behavior.
  • Experience with messaging, networking, or serialization technologies such as MQTT, NATS, DDS, ZeroMQ, gRPC, sockets, publish/subscribe patterns, or custom telemetry buses.
  • Experience building simulation, hardware-in-the-loop, fault-injection, test automation, or continuous integration environments for hardware-facing systems.
  • Familiarity with Linux workflows, containerized environments, and modern Python tooling such as pytest, type checkers, linters, uv, or similar tools.
  • Experience with C, C++, Rust, embedded systems interfaces, binary data formats, or C-style data structures.
  • Experience developing mission-critical, safety-critical, or high-reliability software for aerospace, robotics, automotive, industrial, defense, nuclear, or medical systems.
  • Ability to improve observability through logging, metrics, structured telemetry, diagnostics, and clear failure reporting.
  • Experience contributing to formal design reviews, interface control documents, test plans, hazard analyses, or configuration-controlled releases.

Preparing company description.

Company Size

51-200

Company Stage

Debt Financing

Total Funding

$596M

Headquarters

Los Angeles, California

Founded

2023

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Simplify Jobs

Simplify's Take

What believers are saying

  • July 27, 2026 Series C raised $470 million from Paradigm and Caffeinated Capital.
  • The Army expects more than 20 Janus microreactors across Department of Defense installations.
  • Antares targets Mark-1 electricity in 2027 and deployment by September 2028.

What critics are saying

  • Mark-0 proved criticality, not electricity; Mark-1 still must clear 2027 integration tests.
  • NRC licensing remains unresolved; any Part 53 or Army safety delay slips Fort Bragg.
  • A 2028 Army reactor deadline makes one missed milestone existential for Antares.

What makes Antares Nuclear unique

  • August 2026 Army Janus selected Antares for Fort Bragg contractor-owned, contractor-operated microreactors.
  • June 4, 2026 Mark-0 criticality validated TRISO fuel and reactor physics at Idaho National Laboratory.
  • Antares’ NRC pre-application engagement started May 2025, giving it licensing runway.

Help us improve and share your feedback! Did you find this helpful?

Benefits

Health Insurance

Dental Insurance

Vision Insurance

401(k) Retirement Plan

Flexible Work Hours

Remote Work Options

Paid Vacation

Paid Sick Leave

Paid Holidays

Hybrid Work Options

Wellness Program

Mental Health Support

Gym Membership

Phone/Internet Stipend

Home Office Stipend

Professional Development Budget

Conference Attendance Budget

Stock Options

Company Equity

Relocation Assistance

Parental Leave

Family Planning Benefits

Fertility Treatment Support

Adoption Assistance

Childcare Support

Elder Care Support

Pet Insurance

Bereavement Leave

Tuition Reimbursement

Professional Certification Support

Mentorship Program

Training Programs

Tuition Reimbursement

Growth & Insights and Company News

Headcount

6 month growth

-2%

1 year growth

-6%

2 year growth

7%
Investor's Business Daily
Aug 31st, 2026
The Army just put A price on five nuclear microreactors for U.S. Bases.

The Army just put A price on five nuclear microreactors for U.S. Bases. The Army just put a price on its plan to install nuclear microreactors at five military bases across the eastern U.S. - $2.2 billion. The payout flows to five nuclear energy players, including BWX Technologies and Westinghouse Government. Microreactors can be a thousand times smaller than conventional reactors, with correspondingly small footprints that lend themselves to factory assembly, delivery by truck or air, and flexible deployment. They're part of the Trump administration's push to quench surging electricity demand, much of it AI-driven, with nuclear power. How This Uranium Enrichment Technology Aims To Solve The Nuclear Fuel Bottleneck For Big Tech AI data centers require 24/7 power, a demand only nuclear energy can meet. But the industry faces a major hurdle: fuel supply. LIS Technologies CEO Jay Yu breaks down the shift toward domestic uranium enrichment and the roadmap to securing America's energy future. How This Uranium Enrichment Technology Aims To Solve The Nuclear Fuel Bottleneck For Big Tech See All Videos Microreactors are a category of especially petite small modular reactors (SMRs), defined by the Energy Information Administration as ranging from 1 to 20 megawatts of output. The low end of that range is enough to power hundreds of homes at peak demand. None of these development-stage reactors is yet ready for commercial use or military deployment. BWX, Westinghouse land contracts. BWX Technologies (BWXT) is the sole publicly traded vendor selected by the Army. It's set to design and deploy a microreactor for Kentucky's Fort Campbell. Westinghouse Government - a unit of Westinghouse Electric, a joint venture owned by Brookfield Renewable Partners (BEP) and Cameco Corp. (CCJ) - is slated to do the same for New York's Fort Drum. BWX traded close to 1% lower Monday afternoon. Shares are down 12% year to date, after rallying 54% in 2025. Cameco stock shed more than 2%, narrowing its 2026 gain to just under 7%. It rocketed 78% in 2025. Private firms Radiant Industries, General Atomics Electromagnetic Systems and Antares Nuclear will develop units in Georgia, Texas and North Carolina. Each vendor is contracted to design, own, deploy and operate their respective microreactors. They're also responsible for handling nuclear waste disposal within two years, the New York Times reports. IBD newsletters. Get exclusive IBD analysis and actionable news daily. Several SMRs have so far successfully produced stable chain reactions during the second Trump administration. None operate commercially in the U.S. to date. There are dozens of SMRs in various stages of development and deployment across the U.S. "With the private sector funding expected along with these government dollars, the Army expects more than 20 total nuclear microreactors will be built and operated across Department of War installations," the military said in a statement. Microreactors: opportunities and challenges. Microreactors rely on nuclear fission to generate heat and turn turbines with steam. Their primary perk is modularity, which means developers can build and ship them, while buyers could stack modules as needed to meet rising energy demand. The extra small reactors are "(price-competitive) with technologies with similar scale and application," according to a 2021 review published in the journal Progress in Nuclear Energy. But microreactors still yield radioactive waste and face strict regulatory hurdles. Specifically, the availability of the specialized HALEU fuel remains a critical bottleneck for the technology. The Army expects to secure enough high-assay low-enriched uranium (HALEU) for about 20 microreactors, a spokesperson told the New York Times. Beyond that, the Energy Department is attempting to kick-start a domestic supply chain for the fuel through purchase agreements. Follow Harriet Weber on LinkedIn and Bluesky. Find her on Signal: hew.04. YOU MAY ALSO LIKE:

Yahoo
Aug 26th, 2026
US Army taps 5 firms to build on-base microreactors in nuclear energy push.

US Army taps 5 firms to build on-base microreactors in nuclear energy push. Eve Sampson Wed, August 26, 2026 at 1:48 PM PDT The Army is investing billions of dollars to bring nuclear power to military bases, selecting five companies to build nuclear microreactors at installations across the U.S., the service announced Wednesday in collaboration with the Pentagon's Defense Innovation Unit. Antares Nuclear will develop a microreactor - or microreactors - at Fort Bragg, North Carolina; BWXT Advanced Technologies at Fort Campbell, Kentucky; General Atomics Electronagnetic Systems at Fort Hood, Texas; Radiant Industries at Fort Benning, Georgia; and Westinghouse Government Services at Fort Drum, New York. The service said it expects to field more than 20 microreactors across Department of Defense installations. The agreements, worth up to $2.2 billion combined, mark a step in the Army's Janus program, an initiative that aims to introduce microreactors to power installations independently rather than relying on civilian electrical grids. The Army introduced the program in 2025 after an executive order called for the military to speed up its integration of nuclear power, with the goal of having an operational reactor at a military base by Sept. 30, 2028. "Awarding these contracts accelerates our ability to deliver safe, reliable baseload power directly to our installations," Secretary of the Army Dan Driscoll said in a release. "We are building the energy resilience necessary to project combat power globally, without relying on potentially vulnerable external grids." The reactors will be contractor-owned and operated, the Army said, adding that vendors will only be paid if they hit technical milestones. Each installation will remain on the commercial power grid, officials said at a Wednesday media briefing, and the reactors are not intended to power the base completely. The Janus program follows the Pentagon's 2022 announcement of "Project Pele," which sought to develop a portable 40-ton nuclear reactor that could generate one to five megawatts of power. None of the base's future reactors use highly enriched - or weapon's grade - uranium, according to Jeff Waksman, principal deputy assistant secretary of the Army for Installations, Energy and Environment. In the briefing, he said the push toward nuclear energy stemmed from the nation's growing awareness of security risks and reliance on fossil fuel. "Unlike in prior conflicts, we now know that our domestic electric grid is potentially at risk in a conflict," he said during the briefing. "We also know that we will not necessarily be able to move fossil fuels easily wherever we need them to go. Right now, all critical infrastructure that the Army has is backed up by some form of liquid fossil fuel, primarily diesel." Outside of the continental U.S., the threat remains, he said, as U.S. interests often rely on international ships. "We're often dependent. In a lot of our Pacific islands, we're dependent on foreign-shipped fuel from foreign-flagged vessels, and that doesn't give us a lot of comfort if there were to be a future conflict," he continued. Nuclear waste will not be stored on bases long-term, Waksman said. The effort comes as the U.S. is currently at war with Iran, with both countries insisting that the Strait of Hormuz, in which around one-fifth of the global oil supply passes, is under their respective control. The war has driven up energy costs worldwide. Installations were chosen based on a multilayered analysis including mission-set, power grid feasibility, environmental concerns and safety, according to Brandon Cockrell, deputy assistant secretary of the Army for Energy & Sustainability. He also nodded to the bases' role in deploying troops. "It's really difficult to look across the five and not draw the immediate conclusion that this is a direct link to power projection," he said, adding that such a component was part of the assessment. "This is because we have to be able to project power. We have to be able to meet the Army's mission if there is any vulnerabilities in the grid." In Nov. 2025, the Army said it was also considering Fort Wainwright, Holston Army Ammunition Plant, Joint Base Lewis-McChord and Redstone Arsenal. Energy resiliency has become an increasingly important facet of technology development across the Army, which has pitted three contractors against each other to build a light tactical vehicle capable of producing large amounts of energy to power counter-drone systems, electronic warfare and directed energy weapons. The Army did not disclose the contract amounts for each nuclear microreactor company. Radiant, which has a contract tied to a Georgia base, disclosed that it secured an agreement totaling $750 million for 15 Kaleidos nuclear microreactors, which are currently undergoing testing at the Idaho National Laboratory DOME facility. In a Wednesday release, the company said that the 1-megawatt microreactors would be transportable and "plug-in ready." General Atomics, which is tied to a Texas base, advanced its Tactical Energy System, or GA-TES, that has a baseline output of 5 megawatts and can scale up to 20 megawatts, a Wednesday announcement said. The GA-TES is transportable by rail or truck.

Biz Fayetteville
Aug 26th, 2026
Antares awarded Army Janus Program agreement to construct and operate nuclear microreactor power at Fort Bragg.

Antares awarded Army Janus Program agreement to construct and operate nuclear microreactor power at Fort Bragg. By Staff Report, posted 7 hours ago Antares announced today that it has been awarded an Other Transactions Authority agreement under the U.S. Army's Janus Program. The U.S. Army and Defense Innovation Unit selected Antares to own, construct and operate nuclear microreactor power at Fort Bragg, N.C., in support of the Army's energy resilience mission. The Army, the Defense Innovation Unit and a panel of nuclear experts drawn from the Department of Energy, the national laboratories and across the Services selected Antares after rigorous technical due diligence. Evaluated against the field of competing designs, Antares' TRISO-fueled, factory-produced microreactor emerged as one of the most mature and deployment-ready solutions. Antares achieved first criticality of its Mark-0 reactor at Idaho National Laboratory on June 4, 2026. Its Mark-0 was the first reactor to reach that milestone under the Department of Energy's Reactor Pilot Program. Janus extends that momentum from demonstration toward deployment, advancing the Army's goal of operating an Army-regulated reactor on an Army installation by September 2028 under Executive Order 14299. "We're grateful and proud to partner with the U.S. Army and the Defense Innovation Unit on the Janus Program," said Jordan Bramble, CEO and founder of Antares, in a press release. "Energy scarcity is constraining America's most critical defense systems. Through Janus, Antares will deliver clean, firm, resilient power for the warfighter." Janus uses a milestone-based payment structure under which vendors are funded only after meeting defined technical goals, an approach that rewards execution and accelerates the delivery of resilient power to the field. Antares' selection reflects the maturity of its TRISO-fueled, factory-produced microreactor and the operational heritage already being established through its test campaigns at Idaho National Laboratory. "The Janus Program is about transitioning from designs and experiments to reliable commercial hardware which secures our energy independence," said Principal Deputy Assistant Secretary of the Army for Installations, Energy and Environment Dr. Jeff Waksman in a press release. "The Janus Program vendors were selected through a deeply rigorous evaluation on technical, financial and organizational capabilities conducted by an All-Star panel of dozens of experts from across the nation. We look forward to working alongside each team as they proceed toward successfully completing the rigorous technical milestones we've agreed upon." "Between our contracts to deploy dozens of reactors under Janus for the Army, ANPI for the Air Force, and space nuclear for the Space Force, we now have a contract value on the order of $1B that is growing rapidly," Bramble added. Microreactors offer a uniquely resilient power source for defense-critical infrastructure, running for years without refueling and operating independent of the commercial grid or vulnerable liquid-fuel supply chains. As warfighting increasingly depends on assets based at installations across the United States - command and control, missile defense and strategic deterrence among them - reliable, onsite power has become a mission imperative.

Washington Technology
Jul 28th, 2026
Antares fetches $470M to move on military base reactor push.

Antares fetches $470M to move on military base reactor push. Stay Connected Find opportunities - and win them. July 28, 2026 03:07 PM ET The three-year-old startup wants to get ahead of the government's own deadline for operating a nuclear reactor on military property. Antares, a nuclear power startup that designs small modular reactors, has completed a $470 million Series C capital raise to move ahead on efforts to build those systems for U.S. military bases. For Antares, this new financing round announced Tuesday comes a mere seven months after the three-year-old company closed a $96 million Series B raise ahead of a key demonstration for the Idaho National Laboratory. Paradigm and Caffeinated Capital led the Series C round with participation from Industrias Ventures, Point72 Ventures and Shine Capital. Nuclear power is of keen interest to government agencies and commercial enterprises, as well as investors, amid rising electricity demand from data center operators and others that run artificial intelligence workloads. Antares' Mark-0 reactor achieved criticality on June 4 at INL in what the company touts as the first time in four decades that a privately-developed, non-light-water reactor achieved such a designation. Antares is also one of three finalists in a Defense Department initiative for testing small modular reactors at Air Force bases in Colorado and Montana. Radiant Industries and Westinghouse are competing with Antares for selection under the Advanced Nuclear Power for Installation program. The winner will work with the Air Force to have advanced nuclear reactor operating on at least one of the service branch's installation by 2030 or sooner. "On June 4th, we won the race to criticality, and now we've shifted to the race to commercialization," Jordan Bramble, CEO and co-founder of Antares, said in a release. "The military has been a partner to us every step of the way. We've secured firm contracts to build reactors." Antares describes its government customer network as including the Air Force, Space Force, Defense Innovation Unit and NASA. "Our deep customer relationships and committed orderbook allow us to focus our engineering roadmap on one simple thing from here on out - reactors that operate reliably and safely for 6+ years deployed to military installations as soon as 2028," Bramble added. The $470 million Series C figure breaks out to $370 million in equity and $100 million in debt, which Antares will use to accelerate its path from demonstrating its reactor to fielding by 2028. Sept. 30, 2028 also represents a deadline set forth by President Trump's Executive Order 14299 for DOD to begin operating a reactor at a domestic military installation. Antares is eyeing 2027 as the year for the Mark-1 reactor to begin producing electricity.

Yahoo Finance
Jul 28th, 2026
Dr. Rian Bahran joins Antares as Chief Nuclear Officer after $470M Series C

Dr. Rian Bahran, former Deputy Assistant Secretary for Nuclear Reactors at the US Department of Energy, has joined Antares as Chief Nuclear Officer. Bahran oversaw the federal portfolio for advanced reactor research, demonstration and deployment at the DOE. The appointment comes as Antares transitions from demonstrated reactor to fielded systems, following the 4 June initial criticality of its Mark-0 reactor and the close of a $470 million Series C round. Bahran will lead nuclear operations, licensing, government affairs and policy, and drive the company's expansion into new markets. He brings over two decades of experience from Los Alamos National Laboratory, the Department of Defense and the White House Office of Science and Technology Policy. Antares' microreactors are designed to operate autonomously for years without refuelling, delivering power to defence installations and customers beyond reliable grid access.