Physics Expert (Statistical Physics / Quantum Information / Condensed Matter)

๐Ÿข micro1 ยท all micro1 jobs
๐Ÿ“ Worldwide
๐Ÿ“… Posted 2026-08-02 ยท via Himalayas
๐Ÿท Physics-Expert,Quantum-Physics-Specialist,Quantum-Mechanics-Expert,Physics-Specialist,Physics-Research-Specialist
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Role Title: Physics Expert (Statistical Physics / Quantum Information / Condensed Matter)

Role Type: Contractor

Location: Remote

micro1 is engaging Physics Experts (Statistical Physics / Quantum Information / Condensed Matter) to contribute to a research-driven customer project at the intersection of theoretical physics and numerical benchmarking.

In this role, you'll apply your expertise to help train next-generation AI systems. Your work will shape how models learn, reason, and perform through high-quality, real-world input. No prior experience in AI is required โ€” your domain knowledge is what matters.

Scope of Work

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Analyze and provide expert insights into complex statistical physics phenomena, with a focus on replicated random-bond Ising/Ashkin-Teller models, the toric-code threshold, and the Nishimori line.

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Deliver clear, well-documented solutions or critiques of problems relating to Kramers-Wannier duality, quenched disorder averaging, square-lattice self-duality, and domain-wall free energy.

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Engage in advanced numerical work, particularly around 4-state Potts model simulations and interpretation.

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Identify, discuss, and resolve technical challenges involving noncontractible loop defects and related topological features.

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Participate as a Solver, Auditor, or Adjudicator on specific project assignments based on your experience and subfield strengths.

Preferred Qualifications

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Advanced academic background (PhD or equivalent experience) in physics, with specialization in statistical physics, quantum information, or condensed matter theory.

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Direct, hands-on experience applying Kramers-Wannier duality, quenched disorder averaging, and square-lattice self-duality in research or project settings.

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Demonstrated proficiency in numerical simulations involving the 4-state Potts model and analysis of domain-wall free energy.

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Familiarity with topological quantum codes, particularly the toric code and its threshold phenomena.

Originally posted on Himalayas

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