C

C12 Quantum Electronics

Develops quantum processors for industrial apps

Chip Design Intern

Winter 2026
No salary listed
Internship
Master's
Paris, France
In Person

About the job

Requirements
  • You are completing or have recently completed a master’s degree in physics, engineering, or a related field.
  • You have a strong background in quantum physics and have taken courses on Quantum Electromagnetism.
  • You have Python programming skills.
  • You have an interest in experimental work, including setting up measurement equipment and troubleshooting.
  • You speak and write English fluently.
Responsibilities
  • Simulate and compare designs, explore trade-offs, and investigate the relationship between predicted and measured performance.
  • Help cycle the dilution refrigerator based on experiment requirements and coordinate the measurement equipment as needed.
  • Carry out measurements and log data.
  • Process, analyze, and visualize experimental data to characterize component performance and inform further design work.
  • Document code, simulation methods, experimental procedures, and results clearly to support reproducibility and knowledge sharing.
  • Collaborate with engineers and researchers across teams, communicating findings and relating them to shared technical goals.
Desired Qualifications
  • Exposure to Quantum Information.
  • Previous exposure to circuit or electromagnetic simulation, electronic measurements, quantum devices, or cryogenic systems.

About the company

C

C12 Quantum Electronics

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C12 Quantum Electronics builds quantum processor hardware and complete quantum computer systems, and supports experiments in quantum information processing for industrial clients. Their offerings include quantum processors, quantum sensors, and software tools to run quantum programs, enabling intermediate-scale quantum applications. They differentiate themselves by delivering scalable devices and hands-on research acceleration for industry use, bridging academic experiments with real-world deployment. Their goal is to help industries adopt quantum solutions by providing practical hardware and expert support to develop and run useful quantum applications.

Company Size

51-200

Company Stage

Grant

Total Funding

$47.6M

Headquarters

Paris, France

Founded

2020

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Simplify Jobs

Simplify's Take

What believers are saying

  • France 2030 granted €13.9 million on December 23, 2025, extending industrialization runway.
  • C12 and Thales won the 2026 Quantum Effects Award, strengthening credibility with buyers.
  • Hiring stayed active through September 2026, signaling expansion across nanofabrication, security, and software.

What critics are saying

  • Aïdôs stays pre-2027, so revenue depends on unproven hardware hitting physical-processor milestones.
  • QuantumTrack still needs TRL 6 on C12 hardware; defense contracts vanish if tests fail.
  • Carbon-nanotube fabrication remains extremely hard; yield failures can stall C12's entire platform.

What makes C12 Quantum Electronics unique

  • Carbon-nanotube spin-qubit processors target scalable quantum hardware, unlike IBM's superconducting stacks.
  • QuantumTrack with Thales reached TRL 5, proving radar optimization relevance beyond lab demos.
  • Callisto emulator models 13-20 noisy qubits, giving developers realistic software-hardware integration today.

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Benefits

Stock Options

Conference Attendance Budget

Meal Benefits

Wellness Program

Mental Health Support

Professional Development Budget

Sabbatical Leave

Growth & Insights and Company News

Headcount

6 month growth

↑ 0%

1 year growth

↓ -2%

2 year growth

↑ 1%
Brenna Hassett
Sep 29th, 2026
Quantum Effects 2026 awards four routes toward useful quantum hardware.

Quantum Effects 2026 awards four routes toward useful quantum hardware. Quantum Effects 2026 has recognized four application-focused projects spanning quantum annealing hardware, open-source software, atomic magnetometry and photon timing for networked QKD, with the winners set for public presentation in Stuttgart on 6-7 October 2026. Four projects spanning quantum hardware, software, sensing and networking have won the Quantum Effects Award 2026 after evaluation at Technology Readiness Level 5 or higher. The selection matters less as a prediction of near-term quantum supremacy than as a map of where developers are attaching quantum methods to defined engineering tasks. Quantum Effects 2026 is scheduled for 6-7 October 2026 at Messe Stuttgart. The event's applied orientation is also reflected in plans by the Kompetenzzentrum Quantencomputing Baden-Württemberg to present current research and demonstrators there, placing industrial prototypes and usable technology alongside the underlying science. The jury for the international Quantum Effects 2026 conference and exhibition chose one winner in each category. C12 and Thales received the hardware award for QuantumTrack, Fraunhofer FOKUS won in software, QSENSATO SRL took the sensing category and PicoQuant GmbH was recognized for networking. TRL 5 indicates that the entries are being judged as application-oriented developments rather than purely theoretical proposals. The published information does not establish that any of the four systems has achieved mass deployment or a demonstrated quantum advantage over the best classical alternative. It does establish a more concrete threshold: each project is presented as having a path toward direct industrial use. That distinction follows the evaluation discipline used across major research ecosystems, from MIT engineering laboratories to CERN instrumentation programs and the peer-reviewed Nature quantum-information coverage: a quantum mechanism is only one component of a complete system, whose value depends on calibration, control, reliability and comparison with established methods. QuantumTrack links a conventional radar-processing problem to an unconventional quantum architecture. C12 and Thales mapped Multiple Hypothesis Tracking data association onto a carbon nanotube spin-circuit quantum-electrodynamics annealing architecture. MHT is used to manage competing explanations for radar observations; the award recognizes the proposed hardware mapping rather than a claim that the system has replaced operational radar processing. The project is described as a hybrid quantum-classical solution for real-time multi-target radar tracking. That framing is technically important: classical radar systems can continue to handle sensing and much of the signal-processing pipeline while a quantum component is assigned a bounded optimization or association task. C12 and Thales are expected to present QuantumTrack at the Stuttgart trade fair on 6 October, providing a near-term demonstration milestone without, by itself, proving operational superiority. The software winner addresses a different bottleneck. Eclipse Qrisp from Fraunhofer FOKUS is an open-source Python framework that compiles high-level constructs such as variables, functions and loops into gate-based quantum circuits. Its ability to target heterogeneous backends places the emphasis on portability, abstraction and compilation rather than on a new processor or a new qubit count. That distinction is important. A software layer can make quantum hardware easier to program without proving that the resulting circuits are accurate, useful or cheaper than classical workflows. The award identifies an engineering contribution to access and execution; it does not by itself establish scalable fault-tolerant computation. QSENSATO SRL won for its Compact OPM Diagnostic Array, or CODA. The Italian spinoff's platform combines laser-written alkali-vapor cells with an integrated atomic-photonic chip for miniaturized optically pumped magnetometers and precision metrology. Optically pumped magnetometers measure magnetic fields through the response of atomic vapor prepared and interrogated with light. CODA's significance lies in integrating the vapor-cell and photonic elements into a compact platform. The available information does not provide sensitivity, bandwidth, calibration conditions, environmental stability or a comparison with the best conventional magnetometers, so the award should not be read as proof of superior field performance. QSENSATO has also reported a €1 million SAFE funding round led by Quantonation and Deep Ocean Capital. The company is moving toward an in-house fabrication facility for its quantum-sensor work, a concrete industrialization step that extends beyond recognition at the fair while leaving questions about yield, reproducibility and independent performance testing open. The practical test for this type of device is not simply whether the sensing mechanism is quantum. It is whether fabrication variability, temperature control, optical stability, magnetic shielding and calibration can be managed outside a carefully controlled laboratory setup. The award places CODA on an application path but supplies no independent deployment data. That gap is familiar in quantum sensing. A compact architecture can reduce system complexity while still leaving drift, noise and packaging as decisive constraints. For context the earlier sensor development report also showed why moving from atomic components to integrated instruments is an engineering step rather than a single measurement milestone. PicoQuant GmbH's HydraHarp 500 L won the quantum networking category. It is a multichannel Time-Correlated Single Photon Counting time-tagger with 64 or more input channels, 1 ps resolution, an ultra-short dead time of 680 ps and White Rabbit timing synchronization for distributed quantum key distribution networks. These specifications describe measurement infrastructure. A time-tagger records the arrival times of individual detection events and correlates them across channels. In a distributed QKD system, that timing information can support synchronization and analysis of photon detections, but the award does not establish a complete operational network, a secret-key rate, a transmission distance or security against implementation flaws. The distinction between infrastructure and protocol performance is essential. Better timing resolution and shorter dead time can help an experiment process closely spaced detection events, while White Rabbit synchronization can coordinate equipment across a distributed system. Neither specification alone demonstrates long-distance entanglement distribution, quantum repeaters or an unhackable communication service. Taken together, these awards reward integration: connecting an annealing architecture to radar association, translating ordinary programming structures into quantum circuits, compressing atomic magnetometry onto a photonic chip and timing single-photon events across network equipment. Their strongest message is practical rather than sensational. Quantum Effects 2026 is recognizing systems that confront interfaces between quantum devices and industrial workflows, while the missing performance data still prevents claims of broad quantum advantage or commercial readiness. A physical quantum device is only one part of a useful system. The surrounding software must control it, the measurement chain must capture reliable signals and the benchmark must compare the complete workflow with a credible classical alternative. These awards therefore mark credible application targets rather than finished solutions; their value will be determined by reproducible performance under the operating conditions that real users face.

ForkLog
Sep 29th, 2026
C12 and Thales develop quantum system for real-time radar tracking.

C12 and Thales develop quantum system for real-time radar tracking. C12 and Thales unveil QuantumTrack for radar tracking. French companies C12 and Thales have introduced QuantumTrack, a hybrid quantum-classical system for real-time radar tracking of multiple targets. The project has been implemented on an emulator and has reached Technology Readiness Level (TRL) 5. The next step will be testing on C12's physical processor. Quantum processor tackles complex tasks. QuantumTrack addresses one of the most challenging computational tasks in radar technology: implementing the Multiple Hypothesis Tracking algorithm. With each scan, the radar must match thousands of detections with known trajectories while filtering out noise and false targets. The number of possible combinations grows exponentially, forcing classical algorithms to limit the number of hypotheses considered to meet real-time requirements. C12 and Thales have proposed distributing computations between the classical and quantum parts of the system. The quantum processor handles the most demanding phase - selecting compatible hypotheses. The large task is divided into smaller sub-tasks, solved using quantum annealing, and then integrated with the original model. Performance comparable to classical algorithms. In two scenarios with noisy measurements and interference, QuantumTrack achieved solution times comparable to the best classical algorithms. The system was approximately 100 times faster than other tested quantum annealers. Tests were conducted on Callisto, C12's emulator that simulates the behavior of a physical processor with 20 qubits, including errors and decoherence. According to the developers, considering the already established protocol for active qubit reset, the complete QuantumTrack cycle could take about 50 ms. This, according to the partners, brings the system closer to real-time radar tracking requirements. Next step: physical processor. The project received the 2026 Quantum Effects Award in the quantum computing hardware category. The next goal for the partners is to demonstrate the system on C12's physical processor, advancing to TRL 6. The companies are considering applications in air defense systems and drone air traffic management. Thales, a global producer of information systems for aerospace, military, and maritime applications, serves as the project's system integrator. C12 is tasked with developing a quantum annealer for large-scale real-time optimization for QuantumTrack. In August, Thales introduced the Luna 8 hardware security module for creating, storing, and managing cryptographic keys. Found a mistake in the text? Select it and press CTRL+ENTER

Quantum Zeitgeist
Sep 26th, 2026
QC Design's Meridian AI designs quantum circuits better than experts.

QC Design's Meridian AI designs quantum circuits better than experts. The system outperformed both established algorithms and a general-purpose AI agent from OpenAI across a suite of over 100 fault-tolerance design tasks, suggesting a path to accelerate the development of practical quantum computers, QC Design says. "Every quantum manufacturer we meet is working on designing the best architecture for its hardware," says Dr. Ish Dhand, co-founder and CEO of QC Design, highlighting the critical need for tools like Meridian to optimize complex designs under realistic conditions. Meridian AI achieves 10x reduction in logical error rates. Meridian, QC Design's newly developed AI system, demonstrably reduces logical error rates in quantum circuit design, achieving over 10x improvement across a comprehensive test suite of 100 fault-tolerance tasks. Meridian's success isn't merely theoretical; it was validated using Plaquette, QC Design's quantum design-automation platform, which models realistic hardware imperfections to ensure genuine gains beyond superficial optimization, according to the company. This validation process is critical, as the white paper focused on circuits designed to detect errors in protected quantum information, spanning ten error-correction code families and representing major quantum computing platforms. Compared to five leading published algorithms, Meridian achieved a median reduction exceeding 10x in logical error rates, a significant step toward viable fault-tolerant quantum computers. Against the GPT-6 Astra agent, the AI delivered a median 40% reduction, with peak improvements reaching 98.4%, equivalent to a 63x decrease in logical error. The underlying approach behind Meridian, according to QC Design, extends beyond quantum computing, offering potential for scientific problems requiring both solution generation and expert validation. Plaquette platform validates quantum designs under realistic imperfections. Plaquette, QC Design's quantum design-automation platform, functions as a key component for validating Meridian AI's designs under the complexities of real-world hardware imperfections, ensuring improvements aren't merely theoretical successes. QuiX Quantum uses Plaquette's photonics capabilities to tailor fault-tolerant designs to its specific hardware, while Yaqumo employs the software to compare codes and decoders for neutral-atom systems, the company says. QC Design's approach extends beyond simple simulation; the company has forged partnerships with C12, QUDORA Technologies, and ZuriQ, each integrating Plaquette into their unique qubit architectures, carbon nanotubes, trapped ions, and more, to optimise error correction routines and test fault-tolerance protocols before fabrication. These collaborations highlight a growing industry need for tools that accurately model and address the challenges of building practical quantum computers. Founded in 2021 and based in Ulm, Germany, QC Design secured EUR 1.5 million in equity alongside a EUR 2.5 million European Innovation Council Accelerator grant, a EUR 4 million package announced July 16, 2024, with Quantonation Ventures among its investors, the company states. "Over 10x reduction in logical error rates with Meridian," is a key outcome validated by this platform, according to the company, and reflects a growing trend toward AI-driven optimisation in quantum hardware development. The platform's ability to accurately model real-world imperfections is critical, as Dr. This improvement signifies a substantial leap in the efficiency of designing circuits that detect errors in protected quantum information. Stay current See today's quantum computing news on Quantum Zeitgeist for the latest breakthroughs in qubits, hardware, algorithms, and industry deals.

LeMagIT
Jan 29th, 2026
C12 puts its carbon qubits in Classiq to seduce 'quantum developers'

C12 puts its carbon qubits in Classiq to seduce 'quantum developers' The French start-up C12 announces a partnership with quantum development software publisher Classiq to participate in the democratization of this field. All in an evolving world, but one that is entering the preparation phase for future uses. C12, one of France's specialists in quantum processors, and Classiq, publisher of a software platform dedicated to quantum computing, have formalized a partnership. Their alliance will attempt to make hardware (based on carbon nanotubes at C12) more accessible to developers. The overall objective - claimed by both players - is to accelerate the adoption of these technologies by companies and research centers. One of the best quantum compilers in the world. Concretely, the agreement will allow integration of C12's emulator (Callisto) into Classiq's Integrated Development Environment. Callisto reproduces the physical parameters and real noise of the architecture developed by the start-up (based on spin qubits in carbon nanotubes). While waiting for C12's chips to mature, it allows running quantum algorithms involving up to 13 qubits on classical processors. 'The interest of the partnership is to connect [our] emulator to a high-level software platform, used by developers and industrial players to design and compile [...] large-scale quantum algorithms,' deciphers Pierre Desjardins, CEO and co-founder of C12, for Le MagIT. 'Classiq has developed one of the best compilers in the world for quantum computing,' he continues. Now the compiler is one of the keys that can change the status of quantum computers. 'It's what transforms abstract algorithms into instructions executable by hardware. It's also what optimizes qubit utilization and error management,' explains the expert who studied at École Polytechnique, Columbia and MIT. Implicitly, it's also about C12 existing in Classiq's ecosystem as a 'backend provider' alongside big names like IBM, AWS, Microsoft, Google or NVIDIA. There are 'quantum developers' and 'quantum developers' The target of this strategy is what should now be called the 'quantum developer' (even if it's established that one can simultaneously determine the position and velocity of this developer). 'This market remains relatively limited, but it's evolving rapidly,' observes Pierre Desjardins. This community would, in fact, be driven by two 'complementary dynamics.' The first is 'an expert community, coming from academia and R&D, which already masters quantum concepts.' The second is 'a broader population of developers, engineers or data scientists, who are interested in quantum with increasingly abstract and accessible tools (note: including Classiq),' compares Pierre Desjardins. 'The challenge is therefore not only the current number of quantum developers, but the democratization of access [to these technologies],' he summarizes. Platforms like Classiq play an important role in this project since they allow non-specialists to design and test quantum algorithms without having to dive into qubits. The active preparation phase for future uses. This partnership around democratization occurs in a world that is certainly promising, but still in its early stages. 'Quantum computing is not yet ready to solve large-scale industrial production problems on its own,' concedes Pierre Desjardins. 'But it has entered an active preparation phase for these uses,' he immediately adds. 'The subject is no longer "will quantum work someday?", but rather how to prepare now the architectures, tools and use cases that will allow exploiting it as hardware progresses,' insists the expert. Not yet processors, but already industrial collaborations. Today, C12's processors are still in development. 'But thanks to approaches like realistic emulation, HPC-quantum hybrid workflows and working with industrial partners, it's already possible to explore concrete cases, qualify their interest and guide technological choices,' assures Pierre Desjardins. 'This is the phase we consider critical today.' Among these industrial partners, C12 is already working with Thales on radar system optimization problems. Other projects are being conducted in chemistry and aeronautics for simulation of complex systems. C12 won't give names 'for confidentiality reasons.' 'But these collaborations illustrate the growing interest [of industrial and institutional players] in preparing, right now, the future integration of quantum computing into their workflows,' predicts Pierre Desjardins.

Maddyness
Dec 19th, 2025
C12 secures €14M French public funding to accelerate quantum computer industrialisation

C12, a French quantum computing startup, has secured a €13.9 million innovation grant from France's France 2030 plan to accelerate industrialisation of its quantum computer. The company previously raised €18 million last year from investors including BNP Paribas, Bpifrance, 360 Capital, Varsity and Serena. C12 develops quantum processors using spin qubits integrated into carbon nanotubes within semiconductor chips, based on research from CNRS and École normale supérieure's physics laboratory. The technology aims to address scalability challenges in the quantum sector. The funding will support the 24-month QARTIQ project, focused on industrialising the entire quantum processor production chain, from chip manufacturing to integration with high-performance computing environments and cloud systems. The company is working to improve chip quality, characterisation and initialisation processes.