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Uber and Nvidia Forge Ambitious 100,000‑Robotaxi Partnership

In a landmark development for the future of transportation, Uber has announced a strategic partnership with Nvidia to deploy up to 100,000 autonomous robotaxis, starting in 2027. This bold move positions Uber at the forefront of the race to integrate Level 4 self-driving technology into commercial ride-hailing. Leveraging Nvidia’s latest AI-driven hardware and software platforms, the initiative is set to transform how urban mobility is managed and scaled globally.

The Robotaxi Revolution

  • Central to the partnership is Nvidia’s newly unveiled DRIVE AGX Hyperion 10 platform.
  • This system equips vehicles with high-performance computing, sensors, and software capable of full self-driving in controlled environments, known as Level 4 autonomy.
  • This platform allows auto manufacturers to integrate autonomous capabilities during production, ensuring consistency, safety, and efficiency across fleets.
  • It also supports the rapid training and simulation of driving scenarios using real-world and synthetic data, significantly reducing development cycles.

Uber’s Role

While Nvidia supplies the AI infrastructure, Uber will manage the end-to-end operations of the autonomous fleet. This includes responsibilities such as,

  • Remote monitoring
  • Charging and cleaning
  • Maintenance
  • Customer service support

Uber aims to enhance its mobility network by transitioning from traditional human-driven rides to a hybrid system where autonomous vehicles complement human drivers. This will not only diversify its service but also reduce dependency on gig workers in the long term.

Stellantis and Global Deployment

  • As part of the partnership, Stellantis will deliver at least 5,000 Nvidia-powered robotaxis, expected to enter production in 2028.
  • Initial rollout will take place in the United States, with global operations expanding based on regulatory approvals and pilot program results.
  • Production support will come from electronics giant Foxconn, ensuring systems integration and hardware readiness.
  • This collaboration marks a critical step in achieving economies of scale for mass robotaxi deployment.

Boosting AI Development Through Data

Uber is also working with Nvidia to build a robotaxi data factory, gathering over 3 million hours of autonomous driving data. This data will be used to,

  • Train and validate AI driving models
  • Simulate real-world traffic and weather conditions
  • Improve safety and reliability of autonomous systems
  • By creating a continuous loop of data ingestion, scenario mining, and large-scale training, this facility aims to accelerate the timeline to profitability for autonomous fleets.

Benefits and Strategic Impact

Deploying 100,000 robotaxis could significantly lower the cost-per-mile for ride-hailing services. Automation reduces operational expenses tied to human labor, making autonomous rides more affordable and accessible over time.

Moreover, by managing a fleet at this scale, Uber can ensure,

  • Standardized safety protocols
  • Optimized routing and dispatching
  • Better service availability in high-demand zones

These benefits can help Uber gain a competitive edge over rivals in both traditional ride-hailing and emerging autonomous services.

Key Static Facts

  • Partnership announced: October 2025
  • Target deployment: Begin in 2027
  • Full production (Stellantis): From 2028
  • Robotaxi fleet goal: 100,000 vehicles
  • Initial supplier: Stellantis with hardware integration from Foxconn
  • Technology used: Nvidia DRIVE AGX Hyperion 10
  • Autonomy level targeted: Level 4 (self-driving under specific conditions)
  • Pilot cities include: Austin, Atlanta, Abu Dhabi, and others
  • Current autonomous partners: Waymo, Nuro, Pony.ai, May Mobility, WeRide, Momenta
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