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Apple Targets Microsoft and Nvidia with New Macs to Lower AI Costs

Apple is positioning its newest desktop computers as a cost-effective alternative to renting cloud data centers for corporate artificial intelligence tasks, according to Reuters reporting published on Sept. 22. Set to ship on Tuesday, the upgraded Mac Minis…

Apple Targets Microsoft and Nvidia with New Macs to Lower AI Costs
Apple is positioning its newest desktop computers as a cost-effective alternative to renting cloud data centers for corporate artificial intelligence tasks, according to Reuters reporting published on Sept. 22. Set to ship on Tuesday, the upgraded Mac Minis and Mac Studios can cost nearly $20,000 and handle local AI processing, putting them in direct competition with upcoming hardware from Nvidia and Microsoft.

The Economics of On-Device AI Hardware

According to Reuters, Apple’s strategy targets intense corporate AI workflows such as coding and complex business tasks. By running these models locally, businesses avoid paying recurring “token” fees—the fundamental unit of AI computing—charged by cloud leaders like OpenAI and Anthropic. Apple’s chief hardware officer, Johny Srouji, emphasized the financial value of the hardware during a recent product launch event. “Once you have the machine on your desk, you’ve paid for it. And I believe we provide absolutely great value, not only in terms of performance, but cost,” Srouji said, as reported by Reuters. “There’s no cost per token. You’re just using the machine again and again.”

Unified Memory Architecture and Enterprise Challenges

Apple’s push into enterprise AI desktops builds on foundational changes made in 2020, when the company introduced its proprietary Apple Silicon. By combining computing and memory into a single unified memory architecture originally designed to improve iPhone battery life, Apple accidentally created hardware well-suited for AI workloads. According to Reuters, this close integration preceded similar shifts by Nvidia and other PC chip designers. Despite these technical capabilities, Apple faces an uphill battle in the corporate market. Data from IDC analyst Linn Huang cited by Reuters shows that Apple holds roughly 4.6% of the enterprise desktop market, compared to 91.3% for Microsoft Windows.

Competing Strategies from Microsoft and Nvidia

Microsoft is pursuing a similar vision for what CEO Satya Nadella terms “unmetered intelligence” on local devices, alongside plans to integrate AI features into a Windows “super app.” However, Microsoft’s dominance in corporate computing requires supporting hardware from a vast array of vendors, which complicates chip optimization. Microsoft told Reuters that it actively collaborates with chip partners to streamline AI workloads using Windows ML tools and views features like RDMA (Remote Direct Memory Access) as key investment areas. Meanwhile, Nvidia continues to focus primarily on data center infrastructure, with CEO Jensen Huang downplaying direct competition with Apple during a summer PC chip launch covered by Reuters.

Scaling AI Models from Desktops to Data Centers

To demonstrate the raw processing power of the new lineup, Apple showcased four Mac Studios linked together via bespoke RDMA over Thunderbolt networking at a September launch event. According to Reuters, the stacked machines ran an AI model featuring a trillion parameters—a complexity measure typically requiring data center infrastructure—to successfully isolate and repair a graphics coding bug while running off a single wall outlet. Srouji noted that enterprises can scale AI models seamlessly across Apple’s hardware ecosystem, moving from local Mac Studios down to iPhones and iPads that share identical foundational chip architectures.

Apple Targets Microsoft and Nvidia with New Macs to Lower AI Costs
Photo: finance.yahoo.com
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About the author: Anika Shah - Technology

MSc in Computer Science, senior reporter. Anika focuses on AI ethics, cybersecurity, and emerging hardware—frequently moderating panels at CES and Web Summit. “Anika Shah decodes tech breakthroughs and startup disruption shaping tomorrow’s digital landscape.”