Quantum System Adoption in Enterprise Technology

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Summary

Quantum system adoption in enterprise technology refers to integrating quantum computing capabilities into business operations, allowing organizations to solve complex problems beyond the reach of traditional computers and safeguard their data against future cybersecurity threats. Enterprises are increasingly preparing for quantum advances by identifying relevant business challenges, updating security protocols, and exploring hybrid workflows that combine classical and quantum computing.

  • Assess quantum risks: Start by inventorying current cryptographic systems and evaluate which areas may be vulnerable to future quantum breakthroughs.
  • Target high-value challenges: Select specific business problems where quantum computing shows clear promise and test solutions in partnership with quantum technology providers.
  • Build internal readiness: Invest in quantum literacy across your organization and establish flexible workflows that can adapt as quantum solutions become available.
Summarized by AI based on LinkedIn member posts
  • View profile for Claudia Nemat
    Claudia Nemat Claudia Nemat is an Influencer

    Board Director at ABB, Daimler Truck, Deutsche Börse | Tech, AI, physics

    43,616 followers

    Most enterprises treat quantum computing as a nerdy R&D curiosity. A mistake. Critical business problems, which are fundamentally constrained by classical computing today, are likely to be solved by 2030. With a hybrid combination of high performance computing and quantum approaches. Three sectors stand out: Pharma, Life & Material Sciences: Drug discovery is essentially a molecular simulation challenge. Classical systems approximate. Quantum systems are designed around quantum mechanics itself. Thus, it is not just about faster research, but the ability to model molecular interactions with higher fidelity. For protein folding, compound optimization, personalized therapeutics. Reaching quantum advantage first in pharma won’t merely accelerate pipelines — it will redefine them. Financial Services: Banks, insurers, stock exchanges operate enormous optimization, transaction or probability engines. E.g., for risk simulations, or fraud detections. Many of these problems scale exponentially in complexity. Quantum algorithms are particularly promising where classical Monte Carlo simulations hit practical limits. And, quantum computing is becoming a cybersecurity challenge. Post-quantum cryptography migration will likely be one of the largest infrastructure transitions the financial sector has seen for decades. Complex Logistics & Supply Chains: Airlines, shipping companies, manufacturers, energy grids, and global retailers all face combinatorial optimization problems. These systems already operate at scales where small efficiency gains create major business impact. Enterprises operating in these segments should get „quantum-ready“ now: • Identify quantum-relevant business problems • Work with quantum partners who advocate an open approach • Build internal quantum literacy • Develop hybrid workflows • Prepare your security stack for the post-quantum era. Additionally we need quantum computing companies delivering at production scale. IQM Quantum Computers calls this Production Quantum. Which is the delivery of a production-ready full stack solution rather than just a scientific solution for a specific problem. This is the same pattern we saw with #AI. The competitive gap formed before the technology fully matured. #Quantum readiness is becoming a strategic capability and critical timing question. For an increasing number of enterprises. Not only for R&D departments.

  • View profile for Prof. Dr. Ingrid Vasiliu-Feltes

    Quantum & AI Governance I Deep Tech Diplomacy,Investments, Strategy I Innovation Ecosystem Builder I DLT-Web3 Architectures I Cyber-Ethics I Precision Longevity I Board Advisor I Vice-Rector I Editor I Author I Keynotes

    54,371 followers

    Deloitte’s Global Quantum Cyber Readiness News & Insights hub consolidates thought #leadership, frameworks, and practical guidance to help organizations prepare for the disruptive #cybersecurity implications of quantum computing. At its core, the content emphasizes that while #quantum technologies unlock transformative capabilities, they also pose a systemic threat to current cryptographic systems, making proactive preparation imperative. A central theme is “quantum #risk”—the likelihood that future quantum computers could break widely used encryption, exposing sensitive #data. Deloitte highlights that this risk is not theoretical; adversaries may already be harvesting encrypted data today for future decryption (“harvest now, decrypt later”). The hub outlines a structured approach to readiness. Organizations are encouraged to begin with cryptographic discovery and inventory, identifying where #encryption is used and assessing vulnerabilities. This is followed by developing a migration roadmap toward post-quantum cryptography (PQC) and embedding crypto-agility, enabling systems to adapt quickly as standards evolve. Deloitte also stresses the importance of #governance and enterprise-wide #transformation. Quantum readiness is not solely a technical issue; it requires leadership awareness, cross-functional coordination, regulatory alignment, and continuous monitoring of emerging standards (e.g., National Institute of Standards and Technology (NIST) A key contribution is the Quantum Readiness Toolkit, developed with the World Economic Forum, which provides guiding principles and actionable steps. These include integrating quantum risk into enterprise risk management, educating stakeholders, prioritizing investments, and collaborating across ecosystems to address systemic vulnerabilities. Deloitte frames quantum cyber readiness as a strategic imperative. Early adopters can enhance #trust, #resilience, and market positioning, while delayed action increases exposure to significant operational, financial, and reputational risks in the emerging quantum era.

  • View profile for Jan P.

    AI Transformation | AI Strategy | IBM Consulting | Speaker

    15,385 followers

    Quantum computing is moving from promise to platform. For years, quantum has lived in research labs and long-term roadmaps. The question was not whether it worked in theory, but whether anyone could turn it into an ecosystem, a product portfolio, and a repeatable strategy. According to a 2025 report from Gartner, IBM is now the company to beat in quantum computing. The recognition points to strength across research, product portfolio, and ecosystem development. A combination that matters. Quantum computing is not an incremental upgrade to classical systems. It is a fundamentally different architecture built on superconducting transmon qubits and quantum circuits. These systems are designed to tackle classes of problems that remain inaccessible to even the most powerful classical supercomputers. The real shift, however, is not about replacing classical computing. It is about integrating it. IBM’s vision centers on a quantum-centric supercomputing model, where quantum processing units work alongside classical hardware such as GPUs. Each architecture handles the part of the problem it is best suited for. Together, they address challenges no single system can solve alone. Execution is where many emerging technologies stall. In quantum, it has required sustained research, disciplined milestones, and early access for developers and enterprises. IBM first put a quantum computer on the cloud in 2016. Since then, it has built an ecosystem that includes hundreds of academic institutions, startups, and industry partners, alongside the open source Qiskit software development kit. Roadmaps are easy to publish. Delivering against them is harder. Since introducing its quantum development roadmap in 2019, IBM has consistently met its stated milestones. Therefore, this recognition is not about a single breakthrough. It reflects a long-term strategy that connects research, hardware, software, and community into a coherent platform. #IBM #IBMiX #Quantum

  • View profile for Pascal Brier
    Pascal Brier Pascal Brier is an Influencer

    Group Chief Innovation Officer chez Capgemini | Member of the Group Executive Committee

    16,175 followers

    A #quantum journey doesn't always begin with a quantum computer.   I recently sat down with Jonathan Reichental, PhD at Forbes together with Julian van Velzen to discuss how organizations are really approaching quantum today. What we're seeing is that they tend to start in three places.   First, enterprises typically want to know where the technology genuinely stands beyond the hype or the dismissive claims (take your pick). And quantum isn't one thing. It's a wide range of technologies maturing at very different speeds. Some are ready. Many aren't. That's a nuance that many click-bait publications often gloss over, one way or the other.    Second, Post Quantum Cryptography (PQC), or the development of new encryption algorithms specifically tailored to resist quantum-empowered cyber attacks. The irony is that PQC isn't a quantum solution at all: it's how you protect today's encryption from tomorrow's quantum machines. But it's become a real entry point into quantum for many organizations. Assessing the risk builds the knowledge and urgency a broader quantum strategy will need. Banking, insurance and the public sector are already moving, because data harvested now can be decrypted later.   Third, quantum simulation or "quantum for science" as I call it. Modeling molecules and materials that are themselves quantum by nature. Paired with #AI, this is where the tangible promise sits: new or better materials, less or no corrosion, faster drug or protein discovery, etc…   So to sum up, our core belief is that quantum isn't a single technology arriving on a single date, and waiting out the uncertainty is the real mistake. The risk isn't moving too early: it's the long, costly catch-up that hits the unprepared tech leader.    Or said in another way: The quantum winners won't be the fastest. They'll be the ones who prepared earliest.   Full interview below, worth a read 👇 https://lnkd.in/eygXSY6x

  • View profile for Chuck Whitten

    Senior Partner and Global Head Of Bain Digital

    18,251 followers

    Most quantum boardroom conversations end without an agenda. They end with a posture — "we're monitoring quantum developments," "we're taking it seriously". Neither statement produces a plan. The distinction matters because quantum creates three problem classes, each with a different urgency and a different cost of inaction. A generic posture misaddresses all three at once. The right response, for most leadership teams, has three parts. The first is to defend now. Post-quantum cryptography belongs on the enterprise risk agenda as a current priority. That means building visibility into cryptographic dependencies across the enterprise, identifying migration priorities, and mapping third-party exposure. This is the part of the quantum agenda that cannot wait. The second is to explore selectively. Most leadership teams do not need a wide portfolio of quantum pilots. They need a small number of focused efforts on high-value problems where the workload aligns with quantum's actual strengths — evaluated against the strongest available classical alternative. Each effort should be a targeted test: one specific problem, one clear classical benchmark, one honest evaluation. The third is to build options. For companies in simulation-relevant sectors — pharmaceuticals, advanced materials, energy — the right posture is modest investment in partnerships and early hardware collaborations. The goal is R&D workflows that are ready to integrate quantum subroutines when the technology matures. The companies that benefit most will not necessarily be those spending the most today. They will be the ones best positioned to move when the moment arrives. The most common failure on quantum is conflating the urgency of the three classes — treating all three as equally distant or equally immediate, when each has a different clock running. The organizations that get this right understand early which problem classes matter to their business, which ones to set aside, and what the distinction demands of them starting Monday morning. https://lnkd.in/gkymW7Xm

  • View profile for Antonio Grasso
    Antonio Grasso Antonio Grasso is an Influencer

    Independent Technologist | Global B2B Thought Leader | Speaker | LinkedIn Top Voice & Influencer | Advancing Human-Centered AI & Digital Transformation

    42,975 followers

    Quantum readiness is less about sudden disruption and more about cultivating skills, forging collaborations, and aligning strategies with evolving standards, so that businesses can gradually integrate these technologies into their long-term transformation paths. We should see quantum computing as a journey that requires methodical preparation. Finance, logistics, chemistry, and cybersecurity are already experimenting with hybrid models that combine classical and quantum systems. These early steps show that the transition will not happen overnight, but through structured phases of learning and integration. The priority for leaders is to identify processes where quantum can create measurable improvements. This means feasibility studies, pilots, and a roadmap that integrates quantum into IT environments in a sustainable way. At the same time, teams need training in principles, tools, and algorithms, because without this foundation, the technology remains an abstract concept. Collaboration is another essential layer. Partnerships with research hubs, vendors, and cloud providers open access to quantum resources that would otherwise remain out of reach. Alongside this, governance and security must advance with post-quantum standards, ensuring compliance and ethics are never secondary. The real challenge is continuous adaptation. Regulations and technologies will evolve, and strategies must remain flexible. This long-term perspective will define the organizations that are prepared to grow with the next wave of innovation. #QuantumComputing #DigitalTransformation #FutureOfWork

  • View profile for Jan Mikolon

    CTO for Quantum Computing & AI bei QuantumBasel | Generative AI, quantum computing

    13,038 followers

    “𝗪𝗵𝗲𝗻 𝘄𝗶𝗹𝗹 𝗾𝘂𝗮𝗻𝘁𝘂𝗺 𝗺𝗮𝘁𝘁𝗲𝗿 𝗳𝗼𝗿 𝘂𝘀?” The better question is: “Will we be ready when it does?” According to the latest insights from the IBM Quantum Readiness Index, organizations preparing today for quantum advantage by 2027 expect 53% higher ROI by 2030 compared to peers who wait. That’s not a marginal gain. That’s a strategic gap. Quantum readiness isn’t just about technology. It’s about three capabilities: 🔹 Strategy – understanding where quantum creates real business value 🔹 Technology – integrating quantum-classical architectures and AI models 🔹 Operations – building talent, governance, and innovation pipelines In other words: Quantum advantage will not come from buying a quantum computer. It will come from organizations that start preparing their capabilities today. The companies that win the next decade will be those that treat quantum like we treated AI ten years ago: Start experimenting early. Build internal knowledge. Develop use cases before the technology fully matures. Because once the advantage arrives, it won’t wait for late adopters. 53% more ROI is a strong reminder: The biggest risk with quantum isn’t investing too early. It’s leaving ROI on the table.

  • View profile for Rohit Kamath

    Associate Director, Head of Innovation at Körber Stellium

    4,723 followers

    Our R&D team at Stellium Inc. has recently been diving deep into concepts like quantum machine learning and quantum PCA, with the goal of identifying the best levers out there to address supply chain challenges with emerging tech. After our most recent midmonth Innov8 workshop, I’m no longer surprised by the fact that the market size for quantum computing is projected to grow at a CAGR of 18+% during the forecast period 2025-2032. The modern supply chain, as we all know, forms a sophisticated network of interconnected elements, where decision-making amid complexity often involves significant uncertainty. Effective management hinges on processing vast streams of real-time data to minimize costs and fulfill customer demands. As these global systems expand, classical computing approaches are reaching their limits in processing speed and handling intricate modeling. Enter Quantum Computing: 🎱 Quantum solutions are exceptionally positioned to tackle the most demanding challenges in logistics, including route optimization, operational efficiency, and emissions reduction. This capability stems from foundational quantum mechanics principles such as Superposition, Interference and Entanglement, that are redefining computational processes. For supply chain executives, this really boils down to resolving complex problems more rapidly than classical algorithms, including those on supercomputers. The aim is to develop responsive analytics through dramatically reduced computation times. Large scale supply chain optimization problems are no longer going to need hrs or days but rather seconds. Industry researchers and a few enterprises are already applying techniques such as the Quantum Approximate Optimization Algorithm (QAOA) and Quantum Annealing. These methods reformulate combinatorial challenges, like the traveling salesman problem in transportation logistics into quantum frameworks, identifying optimal solutions by reaching the ‘minimum energy state’. We are now seeing progress beyond conceptual stages to practical Proofs of Concept (PoCs): • BMW Group applied recursive QAOA to address partitioning issues in supply chain resource allocation. • Volkswagen demonstrated real-time optimal routing through urban traffic variations. • Coca-Cola Bottlers Japan Inc. utilized quantum computing to refine their logistics for a network exceeding 700,000 vending machines. Quantum-powered logistics and supply chain innovations are poised for substantial growth in the years ahead. Forward-thinking organizations recognize the impending transformation and are proactively preparing to become quantum-ready. At Stellium Inc., we are in our early R&D stage when it comes to exploring quantum use cases and strategic partnerships. I am bullish about the impact it’s going to have on supply chain and recognize the need to invest in it right now. DM if you’re interested to discuss more over coffee at Dubai this coming week or at SAP Connect early October in Vegas.

  • Stop thinking of #Quantum #Computing as a distant, isolated machine. That's the mindset preventing enterprise adoption. The biggest obstacle to achieving Quantum Utility isn't the hardware itself; it's the integration gap. Quantum Processors (#QPUs) are highly specialized accelerators, not standalone systems. They are virtually useless to a business if they cannot speak fluently with your existing classical computing environment, Cloud infrastructure, and data pipelines. This is the key distinction: The path to production-ready Quantum is #hybrid orchestration. This approach makes it realistically achievable for the enterprise by treating Quantum as an extension of your current infrastructure, not a costly replacement. Here is how that integration is built on practical foundations: 👉 Cloud-Enabled Access (QaaS): The Cloud abstracts the immense complexity and cost of housing a QPU, delivering it as a simple, pay-as-you-go Quantum-as-a-Service (#QaaS) resource. This immediately shifts QC from a lab expense to an accessible compute utility. This aligns with a Cloud-First, AI-Enhanced, Quantum-Aware strategy. 👉 The Hybrid Algorithm Loop: The most relevant near-term applications (optimization, materials science) are intrinsically hybrid. This means the classical computer (#HPC) handles the data preparation, parameter optimization, and post-processing, while the QPU performs the single, impossible quantum calculation. They work in a continuous, high-speed loop. Without this tight integration, the theoretical quantum advantage is lost. 👉 Governance & Management: Classical High-Performance Computing (HPC) environments are critical for managing the QPU's extreme fragility. They handle real-time decoding for error correction and autonomous system calibration, ensuring the quantum resource is stable enough for actual business workloads. Think of it this way: The QPU is an ultra-high-performance Formula1 engine, and the classical computing environment is the pit crew, telemetry analysts, and fuel. The engine (QPU) cannot win the race alone. It needs the high-speed pit stop (HPC integration) to process data in milliseconds—adjusting pressure, flow, and direction in real-time. Without this integration, the engine is just an impressive, but unleveraged, piece of engineering. Quantum Computing isn't a replacement for classical IT; it's becoming its most powerful accelerator. Embracing this hybrid, Cloud-centric view is the most efficient way for executives to move past the "hype" and translate these complex technical implications into tangible business value. What is the first real-world business problem in your industry that you believe a hybrid quantum/AI model could solve to generate measurable ROI? Share your insight below. #QuantumComputing #AI #HybridCloud #DigitalTransformation #B2BStrategy

  • View profile for Marin Ivezic

    CEO, Applied Quantum | Author, PostQuantum.com | Quantum Systems Integration, Quantum Security & Post-Quantum Cryptography (PQC) | ex-Fortune Global 500 CISO/CTO & Big 4 Partner

    34,870 followers

    If you want to know why a quantum readiness program in major telco (or any complex enterprise) could easily take 10+ years (some say 15-20) and $350-$500 million of effort, read on. Fresh off the heels of yet another major telecom project, I decided to try to illustrate on an example why I keep saying that quantum readiness programs will be the largest and most complex tech programs most enterprises ever attempted. Despite AI’s editing help, it took me weeks to finish writing this piece - illustrating the challenges without exposing any confidential details. The figures in the post may sound shocking, but quantum readiness isn’t a routine upgrade - it’s arguably the largest and most complicated digital infrastructure overhaul in history. And I hope that the complexity is properly illustrated in this post. In fact, one telecom we worked with has spent over a decade on quantum readiness and is still nowhere near finished with its post-quantum migration. As another reference data point, my recent integrated program plan tracked over 120,000 tasks. The article breaks down all the key phases of a comprehensive quantum readiness program, key components and workstreams, sample timelines, and estimated spend for each phase. I also break down several key challenge areas that telecom leaders need to tackle in a quantum-safe program such as the massive efforts of upgrading 5G/6G & IMS networks; extremely complex vendor & supply chain dependencies; hybrid cloud & edge integration, backward compatibility, challenges with lawful interception & compliance, and so on. I share these insights in the hope that they help others shape their quantum readiness programs. If you are just embarking on a quantum readiness in a telco (or any other complex enterprise), this could be a useful starting point for you. Having served as an interim Global Fortune 500 telecom CISO and led global telecom cybersecurity practices, this domain has been my focus for years. In short, if you are embarking on a quantum readiness journey in telecom, feel free to reach out - I’m happy to discuss and help where we can. See the full post here: https://lnkd.in/gds9FTFD #QuantumReadiness #PQC #QuantumSecurity #QuantumResilience #QuantumResistance

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