Gemini 4 Expected to Launch Early: Can Google Catch Up With OpenAI and Anthropic?

Source Tradingkey

TradingKey - Google (GOOGL) is accelerating the development of its next-generation flagship AI model, Gemini 4, aiming to regain the initiative in the competition with OpenAI and Anthropic.

According to a report by The Information, Koray Kavukcuoglu, an executive at Google DeepMind, said on Wednesday that Gemini 4 has entered the post-training phase. The team plans to launch an initial version as soon as possible, with the release expected significantly earlier than the end of 2026. Subsequently, Google will also rapidly iterate on the model based on user feedback and actual performance.

What Does Gemini 4 Entering the Post-Training Phase Mean?

Post-training is a key development stage following the completion of large-scale pre-training for foundation models. During this phase, R&D teams typically leverage human feedback, reinforcement learning, and specialized data to optimize the model's capabilities in reasoning, programming, tool calling, safety, and instruction following.

Therefore, Gemini 4 entering post-training does not mean the product is fully mature, but it indicates that its foundational training phase is largely complete, with development focus gradually shifting toward performance tuning, risk testing, and commercial deployment.

Kavukcuoglu stated that the team has already seen encouraging initial results, prompting a desire to release post-training outcomes as early as possible while maintaining a rapid pace of updates. However, Google has not yet officially disclosed Gemini 4's specific launch date, parameter scale, training cost, or benchmark results, and the scope of its initial rollout remains unclear. Related reports suggest that Gemini 4 will be a key product for Google to narrow the gap with OpenAI and Anthropic.

Google's decision to roll out the model in stages also reflects changing competitive dynamics in the frontier AI market. In the past, tech companies might spend extended periods refining a major release. Today, model development increasingly leans toward releasing a functional version first and making rapid adjustments based on real usage data. While this approach improves iteration efficiency, it also places higher demands on model stability, safety testing, and infrastructure capacity.

Can Gemini 4 Help Google Regain Its AI Competitive Advantage?

Gemini 4 faces a far more intense competitive environment than its predecessors.

OpenAI and Anthropic have already established strong market recognition in areas such as complex reasoning, code generation, and AI agents. Enterprise clients are also increasingly focusing on whether models can reliably execute multi-step tasks rather than just answering questions or generating text.

Google's advantage lies in its comprehensive AI product distribution channels. Once Gemini 4 meets expectations, the company can rapidly integrate it into Google Search, Google Cloud, Workspace, Android, and other consumer services, directly reaching individual users, developers, and enterprise clients. Compared to independent AI labs that rely primarily on subscriptions and API services, Google can scale Gemini 4's adoption through its existing product ecosystem.

Google Cloud is also a key destination for the commercialization of Gemini 4. If the new model can enhance performance in code development, data analysis, and AI agent workflows, Google will have the opportunity to attract more enterprises to deploy generative AI applications on its cloud platform, while driving demand for computing power, storage, and data services.

However, model release speed is not the sole factor determining the outcome of the competition. The market will also focus on whether Gemini 4 can build a clear edge over OpenAI and Anthropic in reasoning capabilities, coding performance, multimodal understanding, operating costs, and response speed. If the initial version offers limited improvements, an earlier launch may still fail to alter the existing competitive landscape.

Disclaimer: For information purposes only. Past performance is not indicative of future results.
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