Proxima Fusion

Sustainable Energy

BurningPlasmaPhysicist

Munich, Germany FULL TIME
Market Sentiment
HIGH DEMAND

Neural analysis suggests this role is
optimal for Mid+ candidates.

The Brief

“Burning Plasma Physicist at Proxima Fusion. Skills: Burning plasma physics, Energetic particle transport, Stellarator design. Lead development of transport workflows. Validate transport workflows”

What You'll Achieve.

Achieve reliable steady-state fusion power; Define path toward practical burning plasma operation

Industry & Context.

Sustainable Energy
Problems you'll solve

Solve open-ended reactor design challenges; Solve open-ended physics challenges

What They're Looking For.

Must Have

Postgraduate degree in plasma physics, Expertise in energetic particle transport, Expertise in burning plasma physics, Expertise in kinetic plasma instabilities, Experience studying EP–MHD interactions, Experience using advanced simulation tools, Proficient in scientific programming languages, Comfortable working across disciplines, Take initiative, Communicate clearly, Motivated by solving open-ended physics challenges

Nice to Have

Experience with stellarator optimization, Experience with high temperature superconducting magnets, Experience with machine learning, Experience with kinetic simulation tools, Experience with hybrid simulation tools, Experience with Alfvén eigenmodes, Experience with fast-ion driven instabilities, Experience with wave-particle interaction physics, Experience with orbit-following modeling, Experience with gyrokinetic modeling, Experience with hybrid MHD modeling, Experience with Julia, Experience with C++, Experience with Fortran

What You'll Do.

Lead development of transport workflows

Validate transport workflows

Apply transport workflows

Investigate EP driven instabilities

Assess impact on plasma performance

Ensure alpha particle confinement

Work with stellarator optimization teams

Incorporate physics constraints

Develop reduced-order models

Develop analysis workflows

How You'll Work.

Team & Collaboration

Collaborate closely with theorists; Collaborate closely with computational physicists; Collaborate closely with engineering teams; Collaborate closely with physicists; Collaborate closely with engineers

Communication Scope

Communicate clearly

Full Job Description

WHO WE ARE At Proxima Fusion, we're driven by a bold mission – to redefine the future of sustainable energy. Our unique concept, built upon the groundbreaking W7-X stellarator and the latest advances in technology, paves the way for commercially viable fusion power plants. What’s more, our work in stellarator optimization, powered by cutting-edge computation and machine learning, is propelling us into uncharted territories of fusion technology. New higher performance design points are unlocked by high temperature superconducting magnets. To fully grasp this huge opportunity, we’re building a team of extremely dedicated and passionate people who come together driving something extraordinary, radically transforming technology in the world. WHY JOIN PROXIMA FUSION Working with us, you have the chance to: - Own critical aspects of burning plasma physics that govern the viability and performance of steady-state fusion reactors. - Develop and apply state-of-the-art kinetic and hybrid simulation tools to assess plasma and reactor performance. - Translate your results directly into stellarator design decisions with reactor-scale consequences. - Contribute to the European initiative leading the critical path to a fusion power plant. - Collaborate closely with theorists, computational physicists, and engineering teams in a highly interdisciplinary environment focused on building real fusion devices. YOUR IMPACT In a fusion reactor, fusion-born alpha particles play a central role in plasma self-heating and overall reactor performance. Their confinement, transport, and interaction with collective plasma instabilities directly determine whether a burning plasma can remain stable, efficient, and economically viable. At reactor scale, energetic particle driven Alfvénic activity can enhance fast ion losses, exacerbating plasma loads on the first wall and other in-vessel components. As such, this interaction is critical to include in the design of reactor relevant magnetic configura

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