Scientist, Model Validation and Experimental Data Analysis
Quick Summary
scope and prioritize data requests, spend time on site in Greifswald working alongside diagnosticians and operators,
mappers from experimental archives into IMAS, synthetic diagnostics, and analysis workflows,
Proxima Fusion is Europe’s fastest-growing fusion company and the continent’s best-funded fusion player, as well as the first spin-out from the Max Planck Institute for Plasma Physics (IPP). Backed by over €650M and powered by a growing team across Munich, Zurich, and Oxford, we are developing the hardware and infrastructure needed to deliver the world’s first commercial stellarator fusion power plant.
Our concept advances the most mature fusion technology out there, the Wendelstein 7-X stellarator, through two next-generation machines: Alpha and Stellaris. Our work combines stellarator optimization, advanced computation, machine learning, and high-temperature superconducting magnets to unlock higher-performance designs that were previously out of reach.
Turning these designs into a functioning fusion power plant requires excellence and ownership across every discipline, from physics and engineering to software, manufacturing, law, and business functions.
What We Offer
~1 min readYou will make Proxima's plasma simulation stack trustworthy by confronting it with reality. Every prediction we make for Alpha – Proxima's Q>1 experimental stellarator – and for Stellaris, our commercial power plant, rests on models whose credibility has to be earned against real measurements from an operating device.
W7-X is where we earn it. You will take our integrated modeling framework, FUS3, and our Bayesian plasma state estimation workflow to W7-X data: reconstruct the plasma state from diagnostic measurements, compare our predictive models against what the machine actually did, and turn the discrepancies into a prioritized map of where our physics is right, where it is not, and what we must fix before Alpha's first plasma. Modeling sits on Alpha's operational critical path and cannot be backfilled after first plasma – this role is how we get ahead of it.
You will be the person in the group who lives at the intersection of modeling and experiment: fluent enough in the physics to know what a model should predict, and close enough to the diagnostics to know what the data can actually support.
Responsibilities
~2 min read- →
Validate Proxima's predictive plasma models against W7-X experimental data – neoclassical and turbulent transport, 3D equilibrium, ECRH deposition, pellet fueling and drift, bootstrap current and iota evolution – and record each comparison as a reproducible validation report with quantitative agreement metrics, stated limitations, and a pinned regression test
- →
Reconstruct the plasma state from real diagnostic measurements using our time-dependent Bayesian state-estimation workflow (Thomson scattering, interferometry, CXRS, ECE, XICS, bolometry, magnetics), with calibrated uncertainties, and benchmark it against established analyses such as Minerva/IDA reconstructions and ASTRA power-balance results
- →
Work with raw and pre-processed diagnostic data, not just analyzed profiles – instrument geometry, sightlines, calibrations and the caveats that come with them – and own the forward models, noise models and profile fits that feed transport analysis
- →
Validate against databases of discharges rather than single shots, across W7-X magnetic configurations and operating regimes, so the output is a map of model applicability and parameter trends rather than one-off discrepancy reports
- →
Act as a technical interface to W7-X and IPP: scope and prioritize data requests, spend time on site in Greifswald working alongside diagnosticians and operators, and propose and support experiments that directly target our model gaps
- →
Feed validation back into design – convert diagnostic placement and observability studies on W7-X into requirements for Alpha's diagnostic set, and into realistic uncertainty models for the synthetic measurements we use to design against
- →
Extend the modeling stack itself: mappers from experimental archives into IMAS, synthetic diagnostics, and analysis workflows, so that interpreting a shot end-to-end – raw data to reconstructed plasma state to physics quantities – runs in minutes and is reproducible by anyone in the group
- →
As Alpha approaches operation, help stand up the between-shot analysis loop that will run on day one
PhD in plasma physics, fusion science, or a closely related discipline
Hands-on experience with experimental data from a magnetic confinement device – you have dealt with diagnostics, calibrations, systematic errors, and all the ways real data is messier than simulation output
Experience reconstructing the plasma state from measurements: profile fitting, integrated data analysis, equilibrium reconstruction, or power and particle balance analysis
Strong grounding in transport, equilibrium, and heating physics – enough to tell a code bug from a physics discovery
Rigorous about uncertainty; you treat a validation claim without error bars on both sides as incomplete
Comfortable writing and maintaining scientific software – version control, testing, and reproducibility are habits, not overhead
Can communicate effectively with physicists, diagnosticians, engineers, and experimentalists, and work productively inside an external collaboration
Self-directed; able to identify what needs to be done and execute
Willing to travel regularly to Greifswald, and later to the Alpha site
Nice to Have
~1 min readW7-X experience - operations, diagnostics, or data analysis, and familiarity with the W7-X data archive and Minerva
Stellarator physics background
Bayesian inference, uncertainty quantification, or machine learning applied to experimental data
Experience with integrated modeling and transport codes (FUSE, OMFIT, ASTRA, TRANSP, FUSE, JINTRAC, or similar) and with neoclassical (SFINCS, DKES, NEO) or gyrokinetic (GENE, CGYRO, GX, or similar) codes
Julia and Python programming – our integrated modeling framework is written in Julia
Familiarity with the IMAS data model
Familiarity with AI-assisted development tools
A track record of published validation studies or successful experimental proposals
Recruiter Interview (30-60 min)
Technical Screening (30 min)
Technical Panel (3x60 min)
At Proxima Fusion, our mission is bold: making limitless clean energy a reality. To get there, we need a high-performing, diverse team that brings different perspectives, challenges assumptions, and builds together with purpose. We know that diversity of thought and experience leads to better ideas, stronger execution, and a more resilient team. We don’t look at how you identify, what you look like, who you choose to worship or what ethnicity you are. We care about what you can bring to the table.
Location & Eligibility
Listing Details
- Posted
- October 8, 2026
- First seen
- October 8, 2026
- Last seen
- October 8, 2026
Posting Health
- Days active
- 0
- Repost count
- 0
- Trust Level
- 57%
- Scored at
- October 8, 2026
Signal breakdown
4 other jobs at
View all →Browse Similar Jobs
Stay ahead of the market
Get the latest job openings, salary trends, and hiring insights delivered to your inbox every week.
No spam. Unsubscribe at any time.