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Uber Fined €825 Million By Dutch Regulator Over Driver Account Deactivations

The Dutch Data Protection Authority has fined Uber €825 million over how the company deactivated driver accounts, according to Reuters. The penalty is the second-largest issued under the European Union’s General Data Protection Regulation.

According to the regulator, Uber used automated processes to deactivate some drivers without adequate warning or sufficient human oversight. Deputy chair Monique Verdier said Uber had “committed serious infringements.”

Regulator Challenges Uber’s Automated Decisions

Dutch regulators said some drivers were permanently deactivated without human review. Uber disputed the finding, saying most suspensions are temporary and permanent deactivations require human oversight.

Drivers can also appeal account decisions, Uber said, while the company confirmed it will challenge the fine. “We strongly disagree with this decision and disproportionate fine,” an Uber spokesperson told Reuters.

EU data protection rules require additional safeguards for certain automated decisions with significant consequences. The case centers on whether Uber’s use of automated systems met those requirements when account decisions could affect drivers’ ability to earn a living.

Case Began With Driver Complaints

The dispute dates back to Brahim Ben Ali, a former Uber driver in France. After his account was deactivated in 2019, Ben Ali gathered testimony from 170 other drivers and brought the complaint to the Netherlands, where Uber has its European headquarters.

Swiss digital rights nonprofit PersonalData.io supported the drivers and helped them collect information about Uber’s deactivation process. Founder Paul-Olivier Dehaye said the case showed how account decisions can affect drivers’ income.

“A driver can complete a thousand journeys with satisfied passengers, but if just one person reports a very serious problem, the consequences can be enormous,” Dehaye said.

Uber Faces Further Regulatory Action

According to Dehaye, the €825 million penalty is the third fine the Dutch regulator has imposed on Uber. Previous penalties included a €290 million fine over the handling of drivers’ personal data and a separate €10 million penalty related to privacy violations.

Dehaye said he plans to pursue a class action seeking compensation for affected drivers. He is also launching StartClaims, a company focused on litigation and regulatory actions, initially involving Uber and potentially other gig-economy disputes.

Debate Over Algorithmic Management

The decision has renewed debate over how platforms use software to monitor and discipline workers. TechCrunch cited a blog post by Daring Fireball’s John Gruber arguing that the ruling could make it harder for Uber to use automated systems to identify drivers accused of misconduct.

Gruber said companies, rather than computers, ultimately set the rules behind disciplinary decisions. Dehaye disagreed, saying Uber can use human decision-makers but must accept responsibility for those decisions.

Uber plans to challenge the €825 million penalty, leaving the dispute to further regulatory and legal proceedings.

Google’s Gemini Has A Branding Problem As AI Apps Grow More Complicated

Google’s latest Gemini update highlights a broader problem in consumer AI: companies are increasingly turning internal tools and capabilities into separate products that users must learn to navigate.

In its announcement of new Gemini Live voice features, Google said users should not have to determine whether a task requires Spark, Daily Brief or a simple inbox search. Yet those are precisely the distinctions the Gemini app currently asks users to make.

Too Many Features, Too Many Names

Gemini users can switch between Chat, Spark and Daily Brief, each with its own icon and place in the app. Rather than simplifying the experience, the growing list of branded features risks making the underlying technology more visible than it needs to be.

Daily Brief illustrates the problem. Google describes it as a source of personalised, proactive updates based on information from services such as Gmail and Calendar. In practice, however, some of its suggestions can feel less like useful assistance and more like unsolicited reminders about previous searches or unfinished research.

Spark has almost the opposite problem. The feature can act as an AI agent capable of completing tasks on a user’s behalf, but packaging that capability under a separate brand forces users to understand when and where they should use it.

A simpler approach would be to let users describe what they need and allow Gemini to determine whether a standard response, an agent or another capability is appropriate.

Gemini Is Not Alone

Google’s approach reflects a wider trend across the AI industry, where companies increasingly expose the architecture of their products through separate modes and branded features.

Anthropic, for example, asks users to distinguish between Claude’s standard chat experience and Cowork. ChatGPT similarly separates Chat and Work. For consumers, these distinctions can turn what should be a simple interaction into a question about which product or mode to use.

That approach is largely driven by how AI systems are built, rather than by how people naturally think about using them.

Apple Takes A Different Approach

Apple’s strategy for Siri offers a contrasting model. Rather than requiring users to learn a new AI interface, the company is integrating AI capabilities into tools people already use, including Spotlight, Photos, the camera and voice requests.

That approach could prove more effective as AI becomes a mainstream consumer technology. Users do not necessarily need to understand which model, agent or feature is handling a request; they simply need the system to complete the task.

Text-Based AI Offers A Simpler Model

The popularity of text-based AI assistants points in the same direction. Services such as Poke, Ollie, Lindy, Orchid, Lucas, Folk, Tomo and Instinct largely reduce the interaction to a familiar interface: send a message and let the assistant determine what needs to happen next.

That simplicity removes an additional layer of decision-making. Users do not need to choose between Chat, an agent or a specialised feature before asking for help.

As a16z investment partner Justine Moore recently argued, consumers increasingly want an AI assistant to feel like a contact they can message rather than another application they must learn.

For Google and its competitors, the challenge may therefore be less about adding capabilities and more about hiding the complexity behind them. The AI that wins mainstream adoption may ultimately be the one that asks users to understand the least.

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