Uber Enters the AI Labeling Business with Gig Workers
In an exciting development, Uber is leveraging gig workers to venture into the AI labeling industry, according to a recent report by Bloomberg. This strategic move indicates Uber's desire to diversify its business model by tapping into the rapidly growing machine learning and large-language models market.
Introducing the Scaled Solutions Division
Uber's newly established division, dubbed "Scaled Solutions," aims to facilitate connections between businesses and a workforce of "nuanced analysts, testers, and independent data operators" through its platform. Initially, this division expands on an internal team based in the US and India, already engaged in tasks like feature testing and digitizing restaurant menus for Uber Eats.
Utilizing AI for External Businesses
Previously, Uber has employed artificial intelligence and machine learning technologies within its own operations. Now, the company is taking these innovations to a broader audience, offering their expertise for a fee. Gig workers are being recruited for tasks such as data labeling, testing, and localization for notable companies including Aurora, Luma AI, and Niantic.
The Big Reality of AI Model Training
One of the lesser-known aspects of training AI models is the necessity for numerous human workers to undertake repetitive and tedious tasks. These include refining chatbot responses to enhance human-like interaction and accurately labeling obstacles in self-driving car footage.
Challenges with Human Resource Acquisition
In many instances, companies developing AI models tend to hire workers primarily from developing countries, offering minimal compensation for each completed task. For example, an engineer in India reported earning about 200 rupees (approximately $2.37) for evaluating complex coding responses generated by AI.
Global Gig Workforce
Currently, Uber is enrolling gig workers from various countries, including Canada, India, Poland, Nicaragua, and the United States. Pay rates differ based on the locale and complexity of tasks, with workers receiving monthly compensation. The company is also keen on attracting individuals from diverse cultural backgrounds, fostering adaptability in AI applications across various markets.
A Brief History with AI
This isn't Uber's first foray into the AI domain. The company has invested billions into developing autonomous vehicles, only to halt the program after a tragic incident involving a pedestrian. Additionally, in 2016, Uber acquired an AI research lab founded by cognitive scientist Gary Marcus and other renowned computer science professors.
Conclusion
Uber's recent initiative to engage gig workers in the AI labeling sector exemplifies the company's intent to expand its reach beyond traditional ride-sharing and delivery services. By capitalizing on the gig economy and the increasing demand for AI solutions, Uber is poised to carve out a significant presence in the AI landscape.
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