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AI could make these common jobs more productive without sacrificing quality

July 17, 2025
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July 17, 2025

The GIST AI could make these common jobs more productive without sacrificing quality

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Andrew Zinin

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A study of Chile's workforce finds that AI could "accelerate" nearly half of the tasks performed by the country's 100 most common jobs.

Generative AI has been pitched as a great leveler—a way to increase productivity, slash red tape and busy work, and narrow skills gaps. A new study by Gabriel Weintraub, a professor of operations, information, and technology at Stanford Graduate School of Business, quantifies the potential benefits of GenAI and which jobs are best suited for an AI boost.

Looking at Chile's workforce, the study finds that nearly half of the tasks performed by the country's 100 most common jobs could be "accelerated" using GenAI—that is, completed significantly faster without compromising quality.

"While there are real concerns about GenAI's impact on the workforce, there's also a major opportunity," Weintraub says. "GenAI can speed up routine tasks and work alongside humans, allowing people to focus on higher-value work."

The paper is published on the SSRN preprint server.

The study finds that 80% of Chilean workers are in jobs where GenAI could accelerate at least 30% of their tasks. The wage-equivalent value of the time that could be saved adds up to almost 12% of Chile's gross domestic product.

"How much of that is achievable really depends on how well we take advantage of this opportunity," Weintraub says. "It comes down to implementation, training, and the right policies—and many of those need to be in place now."

The study was co-authored by Victor Morales, director of research at Chile's National Center for Artificial Intelligence; Alvaro Soto, the head of the center; and Juan Eduardo Carmach, development director at Sofofa, a Chilean trade federation.

Rather than focusing on job titles, the research uses data collected by Workhelix to assess AI's impact by breaking work down into specific tasks. Each task is then scored based on how effectively generative AI can reduce its completion time by at least 50% without compromising quality. The result is what the researchers call an "acceleration opportunity," a measure of how much of a job could be made more efficient with current AI tools.

Which jobs are AI-ready

The average increase in AI-boosted efficiency across all roles is 48%. Some occupations scored much higher. Software developers top the list at 87%, followed by policy specialists (84%) and data analysts (80%). In contrast, physically intensive jobs such as construction and packaging have fewer opportunities to integrate AI.

The scale of potential impact on some occupations also stands out. Accountants could gain an estimated $1.7 billion in annual value from AI-accelerated tasks, followed by lawyers ($1.6 billion), engineers in technical fields ($1.3 billion), and retail and warehouse operators ($1.3 billion).

Generative AI could ease pressure on essential services. Elementary education teachers represent more than $1.2 billion in potential gains from AI. With Chile facing a growing teacher shortage, that reclaimed time could make a difference in the classroom.

The study also highlights public administration as a priority for early adoption, estimating that GenAI could unlock over $1.1 billion in value annually in this area. More than 84,000 Chilean government employees are in roles where GenAI could streamline tasks like data entry, document drafting, or form processing.

Small- and medium-sized enterprises (SMEs), which account for 65% of Chile's workforce and 98% of its businesses, also show strong acceleration potential, particularly in sales, customer service, and operational roles. Yet digital adoption remains uneven for many of these businesses, making targeted support and training necessary.

"For a lot of SMEs, adopting this technology is still a big leap," Weintraub says. "They may lack the digital infrastructure, skills, or tools to use these systems effectively."

Even in white-collar work, the benefits of GenAI are not uniform. While higher-paying roles often show more exposure to AI acceleration, the relationship is not linear. Gains peak around mid-to-upper income levels, then flatten or decline at the top. The study illustrates this with a clear curve: Wages rise alongside AI exposure up to around $2,780 per month, but begin to taper off after that.

Senior executives and medical professionals, for example, are less likely to benefit directly because their work hinges on human interaction, oversight, and contextual judgment, according to Weintraub. "That's still not something GenAI is built to replace," he says.

For now, Weintraub and his co-authors recommend targeting "quick wins"—roles with high AI exposure and low friction. In practice, that means streamlining admin-heavy workflows in schools, government, and small- and medium-sized enterprises, where they suggest early successes could create momentum for broader adoption.

Tapping GenAI's full potential, the researchers conclude, will depend on focusing where it can work best—and making it work in practice.

More information: Gabriel Y. Weintraub et al, Generative Artificial Intelligence: Opportunities for the Future of Work in Chile, SSRN (2025). DOI: 10.2139/ssrn.5187299

Provided by Stanford University Citation: AI could make these common jobs more productive without sacrificing quality (2025, July 17) retrieved 17 July 2025 from https://techxplore.com/news/2025-07-ai-common-jobs-productive-sacrificing.html This document is subject to copyright. Apart from any fair dealing for the purpose of private study or research, no part may be reproduced without the written permission. The content is provided for information purposes only.

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Disclaimer: Information found on cryptoreportclub.com is those of writers quoted. It does not represent the opinions of cryptoreportclub.com on whether to sell, buy or hold any investments. You are advised to conduct your own research before making any investment decisions. Use provided information at your own risk.
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