Nomagic

Nomagic

Automates warehouse logistics with AI robotics

Overview

Nomagic builds intelligent robotics solutions for e-commerce logistics to automate warehouse tasks and reduce human work. Its products combine hardware robots with software that use artificial intelligence and machine learning to handle repetitive activities in warehouses, including inventory management and order fulfillment, and to integrate with existing warehouse systems. The company generates revenue from selling robotic systems and providing ongoing service contracts for maintenance and software updates. Distinguished by offering a tightly integrated hardware-and-software platform that can slot into current warehouse operations, Nomagic aims to keep warehouses running smoothly and without interruptions. Its goal is to transform warehouses into fully automated environments capable of meeting the high throughput needs of modern e-commerce.

About Nomagic

Simplify's Rating
Why Nomagic is rated
B-
Rated B on Competitive Edge
Rated B on Growth Potential
Rated C on Differentiation

Industries

Robotics & Automation

Industrial & Manufacturing

Enterprise Software

AI & Machine Learning

Company Size

51-200

Company Stage

Series B

Total Funding

$93.4M

Headquarters

Warsaw, Poland

Founded

2017

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Simplify's Take

What believers are saying

  • On January 28, 2026, Nomagic raised $10 million from Cogito Capital Partners.
  • Zalando ordered up to 50 robots on March 23, 2026 across Europe.
  • Nomagic says July 2026 VLA deployments halved human interventions in live operations.

What critics are saying

  • Nomagic said in July 2026 its VLAs still miss 99.9% success.
  • Zalando and Brack prove traction, but customer concentration exposes revenue to account loss.
  • If safety incidents hit a warehouse, customers freeze deployments and kill Nomagic's expansion.

What makes Nomagic unique

  • Nomagic trains on live warehouse data from millions of monthly picks, not lab simulations.
  • On July 8, 2026, Nomagic ran a VLA model in Brack.Alltron warehouses.
  • Nomagic won the 2026 IFOY Award for Shoebox Picker, validating difficult box-handling.

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Funding

Total Funding

$93.4M

Meets

Industry Average

Funded Over

6 Rounds

Series B funding is typically for startups that have proven their business model and need more funding to expand rapidly—often by entering new markets or adding more products. Investors are usually venture capital firms that specialize in later-stage investments.
Series B Funding Comparison
Below Average

Industry standards

$35M
$30M
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$45M
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$65M
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$100M
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Benefits

Health Insurance

401(k) Retirement Plan

Remote Work Options

Flexible Work Hours

Paid Vacation

Paid Holidays

Sabbatical Leave

Hybrid Work Options

Stock Options

401(k) Company Match

Performance Bonus

Profit Sharing

Employee Stock Purchase Plan

Relocation Assistance

Parental Leave

Family Planning Benefits

Fertility Treatment Support

Adoption Assistance

Childcare Support

Elder Care Support

Wellness Program

Mental Health Support

Gym Membership

Phone/Internet Stipend

Home Office Stipend

Professional Development Budget

Conference Attendance Budget

Training Programs

Tuition Reimbursement

Professional Certification Support

Mentorship Program

Commuter Benefits

Meal Benefits

Legal Services

Employee Discounts

Company Social Events

Growth & Insights and Company News

Headcount

6 month growth

-1%

1 year growth

0%

2 year growth

-4%
Fortune
Jul 8th, 2026
Nomagic's new AI lab headed by former Google DeepMind researcher claims success in early deployment of 'AI brain' for warehouse robots.

Nomagic's new AI lab headed by former Google DeepMind researcher claims success in early deployment of 'AI brain' for warehouse robots. "Embodied AI" and "physical intelligence" are all the rage with Silicon Valley investors these days. The idea is that AI's next frontier will be systems that don't just use software but can take action in the real world through robotic devices, from self-driving cars to humanoid robots. Many startups are chasing AI models that can serve as general-purpose "robot brains," able to be dropped into any kind of robot and told to do almost anything. This is a shift from the kinds of systems that traditionally controlled industrial and warehouse robots. This control software often required weeks or months of on-site programming to perform even one task well. Still, most of these general purpose AI models perform significantly below human-level accuracy on each task, at least right out of the box. The hope is that with just a little bit of additional on-site, task-specific training, these robots will eventually be able to master that task - reducing the barriers to deploying robots in many sectors. Nomagic, a company with European headquarters in Warsaw, Poland, and U.S. headquarters in Sandy Springs, Georgia, is pursuing a different approach: rather than going from generality to task-specific mastery, it is creating AI robot brains that are extremely accurate at specific tasks right out of the box, and then hoping to eventually build from mastery of these individual tasks towards a general purpose system. To pursue this goal, earlier this year Nomagic created an AI research lab led by Markus Wulfmeier, a former Google DeepMind robotics researcher, who now serves as Nomagic's chief scientist. Now Nomagic has announced that it has deployed its first vision-language-action (VLA) model - a type of AI model that can perceive objects in the world, receive and understand text-based instructions from people, and then take actions in the world - to paying customers. The company says it is among the first companies in the world to run VLAs in a live production environment, rather than in lab experiments or staged demos. The early results, according to the company, are tangible if unglamorous: by aiming the VLA at the most common "edge cases" for its warehouse robots - somewhat uncommon situations where a robot gets stuck and has to call for human assistance - Nomagic says it has roughly halved the rate of these robot-caused interventions in live operations. Nomagic's first VLA deployment is with Brack.Alltron, Switzerland's second-largest e-commerce platform, which has been using robots from Nomagic to automate order picking and packing in its warehouses. Roland Brack, the company's founder and owner, said the addition of Nomagic's VLA systems marked a step change. "In the past, our goal was simply to minimize manual intervention. Today, we are seeing robots that truly understand their environment," he said. "This intelligence allows us to run autonomous shifts through nights and Sundays, ensuring we stay ahead of peak demand without increasing the pressure on our human workforce." Nomagic's concedes though that its VLA system is not perfect, even at the specific box picking tasks the company is targeting. "Our VLAs aren't at 99.9% success on their own yet - no one's customer-deployed VLAs are there yet," the company said. But it says it has created a system around the VLA: Nomagic's older "classical" robotics software acts as a "harness," catching errors and enforcing safety, so the entire system can be trusted in a customer's warehouses. "The bar in the physical world is high: 99.9% [reliability] isn't a marketing number, it's the cost of being allowed in the building," Kacper Nowicki, Nomagic's cofounder and CEO, said. "So we built a harness that clears it from day one, while the AI inside keeps getting better." Over time, both Nowicki and Wulfmeier said they expect stronger models to gradually make parts of that harness unnecessary, just as has begun to happen with digital AI. Nomagic recently won the 2026 International Intralogistics and Forklift Truck of the Year (IFOY) Award for Shoebox Picker, which goes to the company whose sorting and picking device can master a notoriously difficult challenge in warehouse automation: handling two-piece shoeboxes without the lids falling off. A former core member of the Gemini Robotics team at DeepMind, Wulfmeier frames Nomagic's approach as a deliberate contrast with the prevailing strategy of competing embodied AI labs. "Most of our community is racing to build the most general robot brain," he told Fortune. "We're betting that the harder part is actual mastery and that it has to be earned in real deployments first." Wulfmeier said that the physical world is dominated by a very long tail of rare situations. This is the same problem that has caused the roll-out of autonomous vehicles to be much slower than many anticipated a decade ago. The AI models running those vehicles have to be trained for an endless array of edge cases. Today, most companies working on the AI models for robotics train either in simulation and then transfer those skills to real world settings (which roboticists call "sim-to-real" training), or by having humans initially operate the robots by remote control, creating examples that the robot learns to imitate. Some combination of those two methods can get an AI model to 80% performance accuracy on a fairly wide array of tasks, Wulfmeier said. But, working in a real warehouse, 80% is basically useless, he said. If a robot needs a human to step in even once an hour, the economics of automation often collapse. Wulfmeier did extensive "sim-to-real" work at DeepMind and said he still believes in simulation and uses it in parts of Nomagic's own pipeline. But he said he doubts either simulation or human teleoperation can economically close the remaining gap to the level of reliability the physical world demands. Paid Content Nomagic said that one major advantage it has over pure research labs is that it is able to gather tons of real world data from the fleet of robots the company already has deployed with customers. That existing fleet generates millions of successful package picks every month (two million with the fashion platform Zalando alone, the company says), and that stream grows as more robots are deployed. Rather than relying primarily on teleoperation or simulated environments, Nomagic trains its VLAs on this deployment data, which Wulfmeier describes as unusually rich and diverse. Tristan d'Orgeval, Nomagic's co-founder and chief strategy officer, said deploying robots to the real world first is a key differentiator between Nomagic and competing companies building AI systems for robots. "We didn't build a lab and then go hunting for a problem," he said. "We started in real operations, with customers who need our robot, and capable AI emerges out of that. The order matters - it's what separates a demo from a business." Sponsored Stories

Associated Press
Jun 11th, 2026
Nomagic's Shoebox Picker wins piece picking robotics innovation of the year

Nomagic, a Warsaw-based robotics company, has won Piece Picking Robotics Innovation of the Year at the SupplyTech Breakthrough Awards for its Shoebox Picker solution. The technology addresses a longstanding warehouse automation challenge, as two-piece shoeboxes have been incompatible with traditional grippers. The Shoebox Picker uses Physical AI and vision-language-action models trained on millions of SKU interactions to handle 98% of shoebox variations, picking 450 units per hour—two to three times faster than manual picking. The system autonomously transitions between picking, packing and sorting whilst adjusting its grip for different packaging types. Zalando is scaling the technology across its fulfilment centres, installing up to 50 Nomagic robots. This marks Nomagic's second major industry recognition after becoming an IFOY Awards 2026 finalist.

No Magic
Jun 11th, 2026
Nomagic's Shoebox Picker wins Piece Picking Robotics Innovation of the Year.

Nomagic's Shoebox Picker wins Piece Picking Robotics Innovation of the Year. The breakthrough Physical AI solution redefining the automation of shoebox picking wins one of this year's prestigious SupplyTech Breakthrough Awards Warsaw, Poland - June 11, 2026 - Nomagic, a leading robotics company applying advanced Physical AI to warehouse automation, today announced that its Shoebox Picker, has been named Piece Picking Robotics Innovation of the Year by the SupplyTech Breakthrough Awards. The win marks a major industry endorsement of Nomagic's leadership in next-generation warehouse automation and it is the second significant industry recognition for the solution after being named a finalist of the IFOY Awards 2026 in the Innovation of the Year category. In fashion e-commerce, shoeboxes constitute approximately 20% of all items - for footwear fulfillment centers, this percentage is significantly higher. Yet the two-piece shoebox has long been considered one of the most complex unpickable items and incompatible with traditional vacuum or mechanical grippers. "Being awarded Piece Picking Robotics Innovation of the Year is a powerful validation of our Physical AI approach," said Kacper Nowicki, CEO and Co-founder of Nomagic. "Shoebox Picker proves that Physical AI can reach mastery and deliver huge value to end users applying specialized tools with a general AI brain for robots. We focus on use cases that matter to the industry and solve them completely: offering both high reliability and high throughput." "The core advantage of the Shoebox Picker is keeping the robot embodiment constant, representing a crucial milestone in robotic tool use. This strategy offers versatility while being far more robust and better controllable than humanoid designs," notes Chief Scientist Markus Wulfmeier. "This integrates with our internal Physical AI, driven by VLA paradigms. Leveraging the millions of SKU interactions within our 'Library of Chaos' - a high-density dataset of real-world edge cases - the system possesses an inherent grasp of the environment. It enables rapid adaptation to new hardware constraints, specifically the complex structural dynamics between shoebox lids and bases." Shoebox Picker integrates this advanced AI perception directly with intelligent end-of-arm tooling. This allows the robot to autonomously transition between picking, packing, and sorting. It can dynamically adjust its grip, ensuring stability and precision across a wide range of packaging variations, which traditional automation systems could never achieve. As a result, Nomagic and Zalando recently announced that the global fashion and logistics leader is scaling Nomagic's technology as part of a partnership expansion, installing up to 50 AI-powered Nomagic robots across its fulfillment centers, including Shoebox Picker units. Shoebox Picker will handle 98% of all shoebox SKUs, picking 450 shoeboxes per hour - 2-3x more than standard manual picking. To watch a video of Shoebox Picker in action, visit https://nomagic.ai/solution/shoebox-picker/. The SupplyTech Breakthrough Awards, a part of the Tech Breakthrough Organization, is a recognition platform for companies and individuals driving significant advancements in the supply chain and logistics industry through technology. Last year's program attracted thousands of nominations from over 15 different countries throughout the world. For more information about the SupplyTech Breakthrough Awards program, visit supplytechbreakthrough.com. About Nomagic Nomagic is a leading warehouse robotics company, applying breakthrough general-purpose Physical AI to optimize warehouse operations. The company's deployed robots learn from a massive set of real operational data, built over millions of tasks in 24/7 environments, that trains an adaptable Physical AI platform handling a variety of warehouse tasks. Nomagic's next-generation VLA (visual language action) models integrate automatically into the fleet of AI-powered robots, accelerating autonomy, improving efficiency, while setting the industry standard for the fastest deployment time. For more information visit nomagic.ai. Media Inquiries: [email protected]

Associated Press
May 11th, 2026
Nomagic expands Swiss partnership with Brack to deploy vision-language-action robotics in live warehouses

Nomagic, a Warsaw-based robotics company, has expanded its partnership with Swiss online retailer Brack.Alltron to deploy Vision-Language-Action systems in live warehouse operations. Brack, Switzerland's second-largest e-commerce platform, is scaling the use of advanced VLA capabilities to enable robots to better understand complex environments and execute tasks with greater autonomy. A key feature is autonomous operation during nights and weekends, including Sunday shifts, helping Brack reduce peak pressure and increase throughput. The company generated revenue of 1.16 billion Swiss francs in 2025. Nomagic's Physical AI platform continuously learns from live operations, enabling robots to adapt to dynamic conditions and handle millions of product variations. The announcement coincided with Web Summit Vancouver, where Nomagic CEO Kacper Nowicki discussed breakthroughs in Physical AI.

Associated Press
Apr 16th, 2026
Nomagic hires Google DeepMind scientist to lead robotics foundation model development

Nomagic, a robotics company specialising in warehouse automation, has appointed Markus Wulfmeier as Chief Scientist. Dr Wulfmeier, formerly of Google DeepMind's Gemini Robotics team, will lead development of Vision-Language-Action models and the company's Robotics Foundation Model. In his role, Wulfmeier will leverage Nomagic's "Library of Chaos", a proprietary dataset of millions of real-world edge cases from warehouse operations, to train advanced AI systems for complex physical tasks. The company is developing Physical AI solutions that learn from production data generated by deployed robots operating in live environments. Nomagic announced the appointment at MODEX 2026, where it showcased its AI-powered robotic picking systems. The Warsaw-based company plans to open a new US headquarters and expand its engineering and commercial teams.

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