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AI · 4 October 2026

Ryzen AI Max+ PRO 495 mini PCs with 192GB RAM emerge — Acemagic, GMKtek, Framework debut ultra-expensive 'supercomputers' that can handle 300B-parameter

Acemagic, GMKtek and Framework are launching mini PCs built on AMD's Ryzen AI Max+ PRO 495 chip with up to 192GB of unified memory, enough to run 300-billion-parameter AI models entirely on-device.

Newsdesk
Curated briefing · 2 min read

What happened

Three PC makers — Acemagic, GMKtek and Framework — are preparing mini PCs built around AMD's new Ryzen AI Max+ PRO 495 processor, configured with up to 192GB of unified memory. According to TechRadar, that memory ceiling is enough to let the machines run AI models with roughly 300 billion parameters entirely on-device, without relying on cloud infrastructure.

The unified memory architecture means the chip's CPU, GPU and neural processing components draw from a single large memory pool rather than separate, smaller allocations. That design is what allows these compact desktop machines to host models of a size typically associated with data-centre-grade hardware, positioning them as a new category of high-end "local AI" workstation rather than a conventional office PC.

Why it matters

This is fundamentally a story about what on-device AI can now do, not about customer experience directly. Running a 300-billion-parameter model locally removes dependence on cloud APIs, data transits and per-token billing — a meaningful shift for developers, researchers and enterprises that need to keep sensitive data in-house or want predictable, offline inference.

For organisations evaluating AI strategy, the arrival of consumer-accessible hardware capable of this scale signals that "frontier-class" model inference is steadily moving out of hyperscale data centres and onto desks. That has implications for data governance, latency-sensitive applications, and how technology teams think about build-versus-buy decisions for AI infrastructure.

By the numbers

  • 192GB of unified memory available in the highest-end configurations reported
  • 300 billion parameters — the approximate scale of AI models the machines can reportedly run entirely on-device
  • Three manufacturers (Acemagic, GMKtek, Framework) confirmed to be building systems on the chip

The Renascence take

The headline figures are impressive, but the more interesting question for operators is what local, high-capacity inference actually unlocks operationally once the novelty wears off.

Most coverage of this launch will fixate on raw specs — memory size, parameter counts, price tags. The real story is about control: organisations handling sensitive customer or employee data can now consider keeping large-model inference entirely in-house, shortening the chain between a prompt and a decision while removing a cloud dependency from the service design. For experience and compliance-conscious industries — healthcare, finance, government — that is a genuine lever, not a gimmick. The practical move isn't rushing to buy a 192GB mini PC; it's auditing which AI workloads in your service stack actually need cloud scale versus which could run locally with tighter latency, lower cost and less third-party data exposure.

Sources

This briefing was written by our Newsdesk, synthesising reporting from the outlets below. Follow the links for the original coverage.

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