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Phd Quantum Computing Jobs in Boston, MA (NOW HIRING)

Summary QuEra Computing is seeking a mission-driven Quantum Scientist focused on designing and ... Advanced experience in Physics, Computer Science, Electrical Engineering, or a related field (PhD ...

Quantum Photonics Engineer

Boston, MA · On-site

$80 - $120/hr

... quantum computing. As an early‑stage company actively building out its quantum memory and ... PhD in Physics, Optics, Electrical Engineering, or related field (or MS with equivalent experience)

... and quantum computing. As an early-stage company actively building out its quantum memory and ... PhD in Physics, Applied Physics, Electrical Engineering, or a closely related field * Hands-on ...

... and quantum computing. As an early-stage company actively building out its quantum memory and ... PhD in Physics, Applied Physics, Electrical Engineering, or a closely related field * Hands-on ...

... and quantum computing. As an early-stage company actively building out its quantum memory and ... PhD in Physics, Optics, Electrical Engineering, or related field (or MS with equivalent experience)

... and quantum computing. As an early-stage company actively building out its quantum memory and ... PhD in Physics, Optics, Electrical Engineering, or related field (or MS with equivalent experience)

Quantum computing is a field where bold claims are common and trust is scarce. Your job is to do ... Exceptional written and verbal communication skills; comfortable engaging both PhD-level scientists ...

Showing results 41-60

Phd Quantum Computing information

What is a PhD quantum computing professional?

PhD quantum computing professionals are experts who have completed a doctoral degree focused on the theory, development, and application of quantum computing technologies. They conduct advanced research in areas like quantum algorithms, quantum hardware, and quantum information theory. These professionals often work in academia, research institutions, or industry roles to push the boundaries of what quantum computers can achieve, solving problems that are intractable for classical computers. Their work involves both theoretical research and practical implementation, often collaborating with interdisciplinary teams.

What are some common interdisciplinary collaborations for a PhD in quantum computing?

PhD candidates in Quantum Computing frequently collaborate with experts from physics, electrical engineering, mathematics, and computer science. These collaborations often involve joint research projects, co-authored publications, and participation in interdisciplinary seminars or lab meetings. Such teamwork not only enriches research perspectives but also helps candidates develop a well-rounded skill set, which is highly valued in both academic and industry settings. Engaging with colleagues from diverse backgrounds can also lead to innovative approaches to solving complex quantum problems.

What are the key skills and qualifications needed to thrive as a PhD in quantum computing, and why are they important?

To thrive as a PhD in Quantum Computing, you need deep knowledge of quantum mechanics, advanced mathematics, and computer science, along with a doctoral degree in a relevant field. Familiarity with quantum programming languages (such as Qiskit or Cirq), quantum hardware platforms, and experience with simulation tools are typically expected. Strong analytical thinking, problem-solving abilities, and effective communication skills help you collaborate across interdisciplinary teams and share complex concepts. These skills are vital for advancing research, developing novel algorithms, and contributing to the rapidly evolving field of quantum technologies.

What is the difference between Phd Quantum Computing vs Quantum Software Engineer?

AspectPhd Quantum ComputingQuantum Software Engineer
Required CredentialsPhD in Physics, Computer Science, or related fieldBachelor's or Master's in Computer Science, Physics, or related field; some roles prefer PhD
Work EnvironmentResearch labs, academia, industry R&DTech companies, startups, industry R&D teams
Industry UsageResearch, development, academiaProduct development, software engineering, application deployment
Common Search/ComparisonYesYes

While both roles involve quantum technologies, a Phd Quantum Computing focuses on research, theory, and developing new quantum algorithms, often in academic or industrial R&D settings. In contrast, a Quantum Software Engineer applies quantum programming skills to develop practical applications and software solutions in industry. The roles overlap in technical knowledge but differ in focus and work environment.

What can you do with a PhD in quantum computing?

A PhD in quantum computing prepares individuals for research and development roles in academia, industry, or government labs, focusing on quantum algorithms, hardware, and software development. Graduates often work as quantum researchers, software engineers, or data scientists, utilizing skills in programming languages like Python and tools such as quantum simulators and hardware platforms.

What are popular job titles related to Phd Quantum Computing jobs in Boston, MA?

For Phd Quantum Computing jobs in Boston, MA, the most frequently searched job titles are:

What job categories do people searching Phd Quantum Computing jobs in Boston, MA look for?

The top searched job categories for Phd Quantum Computing jobs in Boston, MA are:

What cities near Boston, MA are hiring for Phd Quantum Computing jobs?

Cities near Boston, MA with the most Phd Quantum Computing job openings:

Infographic showing various Phd Quantum Computing job openings in Boston, MA as of August 2026, with employment types broken down into 85% Full Time, 12% Part Time, and 3% Contract. Highlights an 83% Physical, 3% Hybrid, and 14% Remote job distribution.

$120 - $190/hr

Other

Medical, Dental, Vision, Retirement, PTO

Posted 15 days ago


Job description

Quantum Memory Physicist

About Qunett

Qunett is developing the foundational hardware layer for quantum networking. Our mission is to build scalable, field-deployable quantum networks through solid-state quantum memory and networking technologies designed to operate beyond the laboratory and integrate directly with real-world infrastructure. At Qunett, physicists and engineers work hands-on with diamond-based quantum devices, photonics, cryogenic systems, and control electronics to translate fundamental quantum capabilities into practical networked hardware. This is a ground-floor opportunity to help shape how quantum systems communicate, scale, and drive the next generation of secure communication, distributed sensing, and quantum computing. As an early-stage company actively building out its quantum memory and photonics teams, Qunett seeks physicists and engineers who bring technical range, adaptability, and readiness to contribute across disciplines as the technology and team evolve.

Work Location

This is a full-time, onsite position based in Boston, MA.

About the role

Qunett is hiring an Experimental Quantum Physicist to advance the frontier of solid-state quantum memory based on group-IV color centers in diamond — with a focus on the electron-nuclear spin register and spin-optical interface that make these systems uniquely suited for real-world quantum networking. You will take ownership of day-to-day operation of a memory testbed and lead pulsed optical and microwave/RF experiments targeting spin-photon entanglement, optical spin initialization and readout, and coherent spin manipulation. The experimental scope spans foundational characterization through networking-relevant implementation. The successful candidate will join the core experimental team building Qunett's diamond quantum memory products for quantum networking.

Required qualifications

  • PhD in Physics, Applied Physics, Electrical Engineering, or a closely related field
  • Hands-on experimental experience with one or more quantum platforms, including solid-state spin defects, semiconductor spin systems, rare-earth ion ensembles or single ions, trapped ions, neutral atoms, quantum materials, or related systems
  • Experience constructing and operating laser-based experimental systems, including optical alignment, laser modulation or stabilization, and single-photon detection
  • Working knowledge of electronic and RF/microwave instrumentation in a lab setting (e.g., signal generators, AWGs, photon time taggers, lock-in amplifiers)
  • Python or equivalent scripting for instrument control, data acquisition, or experimental analysis

Preferred qualifications

  • Experience with optically active spin defects in solids (diamond color centers — NV, SiV, SnV; SiC defects; hBN emitters; rare-earth ions; or related systems)
  • Background in laser spectroscopy and quantum optical characterization, including PLE, linewidth and spectral diffusion measurements, g(2) correlations, optical coherence, and excited-state lifetime
  • Experimental experience with pulsed spin resonance: Rabi oscillations, Ramsey interferometry, T1, T2*, CPMG dynamical decoupling, or equivalent coherent control techniques
  • Experience with cryogenic platforms, particularly sub-Kelvin systems
  • Familiarity with nanophotonic device characterization, waveguide-coupled emitters, or confocal microscopy
  • Experience with coherent quantum optical experiments such as two-photon Hong-Ou-Mandel interference or photon-mediated remote entanglement generation

Benefits

  • Comprehensive health coverage including medical, dental, vision, and prescription plans
  • 401(k) retirement plan
  • Equity participation through stock options for all new hires
  • Flexible time off: unlimited PTO, sick leave, and 11 paid holidays
  • Employee support benefits including EAP, caregiver support, healthcare advocacy, and more
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