Microsoft to Keep Buying Nvidia and AMD AI Chips

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Microsoft CEO Satya Nadella said the company will continue purchasing AI chips from Nvidia and AMD, signalling that hyperscalers still depend heavily on external silicon even as they develop in-house processors for AI workloads.

Microsoft has no plans to step away from third-party AI silicon, even as it invests heavily in designing its own chips.

Speaking on the company’s latest earnings call, Satya Nadella, chief executive of Microsoft, said the company will continue buying AI chips from Nvidia and AMD, underscoring how demand for AI compute is outstripping even the largest cloud providers’ internal capacity.

The comments come as Microsoft rapidly expands its AI infrastructure to support Azure, OpenAI workloads, and a growing portfolio of enterprise and consumer AI products, from Copilot to custom large language models deployed across its cloud services.

Why Microsoft Still Needs Nvidia and AMD

While Microsoft has introduced its own custom AI chips, including the Maia accelerator for data centers, Nadella made clear that in-house silicon is a complement rather than a replacement for external suppliers.

AI workloads are scaling at a pace that makes single-vendor strategies impractical. Training and inference for large models require vast amounts of compute, and Nvidia’s GPUs remain the industry standard for many AI developers, while AMD has emerged as a credible alternative for specific data center workloads.

Nadella said Microsoft is focused on ensuring customers can access the best performance-per-dollar across a range of AI use cases, which means continuing to deploy a mix of chips rather than forcing workloads onto proprietary hardware.

A Signal to the AI Chip Ecosystem

https://www.amd.com/content/dam/amd/en/images/products/data-centers/3366850-instinct-family-teaser.jpg

Microsoft’s position highlights a broader reality across hyperscalers: custom chips may improve margins and efficiency over time, but they are unlikely to displace Nvidia or AMD in the near term.

For Nvidia, Microsoft’s stance reinforces its central role in the AI supply chain, even as customers explore alternatives. For AMD, it signals continued opportunity to gain share as cloud providers look to diversify suppliers and manage costs.

The strategy also reflects risk management. Relying exclusively on in-house silicon could expose cloud platforms to delays in design, manufacturing constraints, or performance gaps as AI models evolve faster than chip development cycles.

What This Means for Azure and Enterprise Customers

For enterprises building AI systems on Microsoft Azure, the continued use of Nvidia and AMD chips means broader compatibility with existing AI frameworks and faster access to next-generation hardware.

https://img.datacenterfrontier.com/files/base/ebm/datacenterfrontier/image/2023/11/6555892bd555f0001ed9ba0d-mscustomrack.png?auto=format%2Ccompress&fill=blur&fit=fill&h=630&w=1200

It also suggests Microsoft will prioritise scale and reliability over tight vertical integration, ensuring that AI capacity constraints do not slow customer adoption. As competition intensifies among cloud providers, the ability to rapidly deploy proven hardware has become a strategic advantage.

The Bigger Picture

Microsoft’s commitment to buying Nvidia and AMD chips illustrates a defining tension in the AI era: hyperscalers want control and cost efficiency, but the speed of AI innovation still favours established silicon leaders.

As AI demand continues to surge, the cloud giants’ future is likely to be hybrid by design — combining proprietary chips with best-in-class external hardware to keep pace with a market that shows no signs of slowing.

Disclaimer

We strive to uphold the highest ethical standards in all of our reporting and coverage. We StartupNews.fyi want to be transparent with our readers about any potential conflicts of interest that may arise in our work. It’s possible that some of the investors we feature may have connections to other businesses, including competitors or companies we write about. However, we want to assure our readers that this will not have any impact on the integrity or impartiality of our reporting. We are committed to delivering accurate, unbiased news and information to our audience, and we will continue to uphold our ethics and principles in all of our work. Thank you for your trust and support.

Sreejit
Sreejit Kumar is a media and communications professional with over two years of experience across digital publishing, social media marketing, and content management. With a background in journalism and advertising, he focuses on crafting and managing multi-platform news content that drives audience engagement and measurable growth.

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Microsoft to Keep Buying Nvidia and AMD AI Chips


Microsoft CEO Satya Nadella said the company will continue purchasing AI chips from Nvidia and AMD, signalling that hyperscalers still depend heavily on external silicon even as they develop in-house processors for AI workloads.

Microsoft has no plans to step away from third-party AI silicon, even as it invests heavily in designing its own chips.

Speaking on the company’s latest earnings call, Satya Nadella, chief executive of Microsoft, said the company will continue buying AI chips from Nvidia and AMD, underscoring how demand for AI compute is outstripping even the largest cloud providers’ internal capacity.

The comments come as Microsoft rapidly expands its AI infrastructure to support Azure, OpenAI workloads, and a growing portfolio of enterprise and consumer AI products, from Copilot to custom large language models deployed across its cloud services.

Why Microsoft Still Needs Nvidia and AMD

While Microsoft has introduced its own custom AI chips, including the Maia accelerator for data centers, Nadella made clear that in-house silicon is a complement rather than a replacement for external suppliers.

AI workloads are scaling at a pace that makes single-vendor strategies impractical. Training and inference for large models require vast amounts of compute, and Nvidia’s GPUs remain the industry standard for many AI developers, while AMD has emerged as a credible alternative for specific data center workloads.

Nadella said Microsoft is focused on ensuring customers can access the best performance-per-dollar across a range of AI use cases, which means continuing to deploy a mix of chips rather than forcing workloads onto proprietary hardware.

A Signal to the AI Chip Ecosystem

https://www.amd.com/content/dam/amd/en/images/products/data-centers/3366850-instinct-family-teaser.jpg

Microsoft’s position highlights a broader reality across hyperscalers: custom chips may improve margins and efficiency over time, but they are unlikely to displace Nvidia or AMD in the near term.

For Nvidia, Microsoft’s stance reinforces its central role in the AI supply chain, even as customers explore alternatives. For AMD, it signals continued opportunity to gain share as cloud providers look to diversify suppliers and manage costs.

The strategy also reflects risk management. Relying exclusively on in-house silicon could expose cloud platforms to delays in design, manufacturing constraints, or performance gaps as AI models evolve faster than chip development cycles.

What This Means for Azure and Enterprise Customers

For enterprises building AI systems on Microsoft Azure, the continued use of Nvidia and AMD chips means broader compatibility with existing AI frameworks and faster access to next-generation hardware.

https://img.datacenterfrontier.com/files/base/ebm/datacenterfrontier/image/2023/11/6555892bd555f0001ed9ba0d-mscustomrack.png?auto=format%2Ccompress&fill=blur&fit=fill&h=630&w=1200

It also suggests Microsoft will prioritise scale and reliability over tight vertical integration, ensuring that AI capacity constraints do not slow customer adoption. As competition intensifies among cloud providers, the ability to rapidly deploy proven hardware has become a strategic advantage.

The Bigger Picture

Microsoft’s commitment to buying Nvidia and AMD chips illustrates a defining tension in the AI era: hyperscalers want control and cost efficiency, but the speed of AI innovation still favours established silicon leaders.

As AI demand continues to surge, the cloud giants’ future is likely to be hybrid by design — combining proprietary chips with best-in-class external hardware to keep pace with a market that shows no signs of slowing.

Disclaimer

We strive to uphold the highest ethical standards in all of our reporting and coverage. We StartupNews.fyi want to be transparent with our readers about any potential conflicts of interest that may arise in our work. It’s possible that some of the investors we feature may have connections to other businesses, including competitors or companies we write about. However, we want to assure our readers that this will not have any impact on the integrity or impartiality of our reporting. We are committed to delivering accurate, unbiased news and information to our audience, and we will continue to uphold our ethics and principles in all of our work. Thank you for your trust and support.

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Sreejit
Sreejit Kumar is a media and communications professional with over two years of experience across digital publishing, social media marketing, and content management. With a background in journalism and advertising, he focuses on crafting and managing multi-platform news content that drives audience engagement and measurable growth.

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