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AIModelKit > News > Amazon’s Bold Move: Why AI Benchmarks May Not Be Critical for Success
News

Amazon’s Bold Move: Why AI Benchmarks May Not Be Critical for Success

aimodelkit
Last updated: December 3, 2025 2:45 am
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Amazon’s Bold Move: Why AI Benchmarks May Not Be Critical for Success
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Amazon’s New AI Push: A Shift Away from Benchmarks Towards Real-World Utility

In recent announcements at AWS re:Invent in Las Vegas, Rohit Prasad, Amazon’s SVP of AGI, has stirred discussions in the AI community by critiquing the common practice of relying on model leaderboards. His message was clear: it’s time to move beyond benchmarks that might not reflect the true capabilities of AI models.

Contents
  • The Benchmark Obsession
  • Introducing Nova Forge
  • Democratizing AI Development
  • Real-World Applications: Reddit’s Success
  • Control and Ownership
  • Beyond Raw Benchmarking
  • A New Paradigm for AI Utility

The Benchmark Obsession

Prasad emphasized the limitations of current evaluation methods. “None of these benchmarks are real,” he stated, arguing that they often yield noisy results not indicative of a model’s actual performance in real-world applications. Such a perspective is both contrarian and rather bold, especially in a field where companies are quick to flaunt their leaderboard scores. His comments underscore a pivotal shift from pure model ranking to a focus on practical applications.

Introducing Nova Forge

Amazon’s response to the industry’s benchmarking fixation is the introduction of Nova Forge, a service designed to empower companies with the tools needed to create custom AI models without incurring exorbitant costs. Prasad noted that many companies face a trifecta of poor choices when it comes to customizing AI: they can either fine-tune closed models, risk regression with open-weight models, or build entirely new models—which can be prohibitively expensive.

Nova Forge stands apart by offering access to Amazon’s Nova model checkpoints at various training stages. This allows businesses to input their proprietary data early in the training process, maximizing the model’s learning capacity and ensuring a more tailored output.

Democratizing AI Development

Prasad articulates the promise of Nova Forge: “What we have done is democratize AI and frontier model development for your use cases at fractions of what it would cost before.” This initiative originated from Amazon’s internal teams, who sought a way to integrate their specialized knowledge without starting from scratch—a pattern reminiscent of how AWS evolved from Amazon’s retail infrastructure into a massive profit engine.

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Real-World Applications: Reddit’s Success

Reddit’s CTO, Chris Slowe, has highlighted Forge’s capabilities in building custom safety models informed by over two decades of community moderation data. With past experiences in AI development being a “candy shop” experience for engineers, Reddit is now building a more cohesive safety model that needs to understand nuanced community guidelines, such as the humorous yet serious online rule, “Don’t be a jerk.”

Control and Ownership

A key advantage of Nova Forge is the control it gives to companies over their AI models. Slowe remarked on the freedom to avoid unforeseen API changes and the benefit of retaining ownership of their model weights. This model not only alleviates data privacy concerns but also paves the way for innovative applications across platforms like Reddit Answers.

Beyond Raw Benchmarking

Prasad’s dismissal of the ranking mentality is a calculated move. He indicates that what matters is not merely the "IQ" of the model, but its effectiveness in specialized contexts. The focus for Amazon is clear: develop an ecosystem where companies can tailor AI solutions for specific challenges, rather than simply competing in a race for the best score on leaderboards.

A New Paradigm for AI Utility

Amazon’s approach indicates a significant shift in how AI is viewed and developed. By prioritizing customizability, specialization, and real-world utility, the company aims to redefine success in the AI landscape. As the industry matures, the emphasis may very well transition from performance metrics to the tangible outcomes of AI in workplaces and daily life.


By casting aside the obsession with rankings, Amazon is positioning itself as a disruptor in AI model development. Their focus is on practical applications over theoretical achievements, signaling a new era in the AI industry that prioritizes real-world impact over competitive positioning.

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