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Google Reportedly Testing Gemini 3.8 Flash to Challenge OpenAI and Anthropic in AI Coding Race

by Ishaan Negi
September 3, 2026
in Business, Markets, News, Tech, Trending, World
Reading Time: 4 mins read
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Google Reportedly Testing Gemini 3.8 Flash to Challenge OpenAI and Anthropic in AI Coding Race

Credits: TechCrunch

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The artificial intelligence race is entering another competitive phase, with Google DeepMind reportedly preparing a new Gemini model aimed at improving its performance in coding and reasoning. According to a report by The Wall Street Journal, Google is developing a model that could be called Gemini 3.8 Flash, internally known as “Skimaki.”

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The reported model comes as Google, OpenAI and Anthropic continue to compete for dominance in increasingly important areas such as AI-assisted software development. While Gemini 3.8 Flash is not expected to replace Google’s most powerful models, its reported coding capabilities could help Google strengthen its position among developers.

Google almost ready to launch new Gemini AI model, may beat Anthropic and  OpenAI in coding this time - India Today

Credits: India Today

Gemini 3.8 Flash Reportedly Impresses Google Engineers

According to The Wall Street Journal, some Google engineers have reportedly preferred the upcoming model over Anthropic’s Opus model when using AI for coding tasks. If those internal results translate into strong performance on public benchmarks, Gemini 3.8 Flash could become an important addition to Google’s growing AI lineup.

Coding has become one of the most closely watched areas of AI development. Models that can understand code, identify bugs, modify software and complete complex programming tasks are increasingly being integrated into developer workflows. As a result, improvements in coding performance can have a significant impact on how useful an AI model is in the real world.

However, the reported internal preference does not necessarily mean that Gemini 3.8 Flash will outperform competing models across the board. AI systems can perform very differently depending on the benchmark, programming language, task and evaluation method.

Google Is Reportedly Increasing Its Use of Reinforcement Learning

One of the major areas of focus behind the reported model is reinforcement learning. This approach allows AI systems to improve their performance by attempting tasks repeatedly and receiving feedback about the quality of their results.

Reinforcement learning has become increasingly important as AI companies attempt to push models beyond basic instruction following. Instead of simply training models to predict the next piece of text, developers can use feedback and reward mechanisms to encourage better reasoning, problem-solving and coding behavior.

Google has reportedly been placing greater emphasis on reinforcement learning as it works to improve the performance of its Gemini models. The company has also strengthened its research team with talent experienced in post-training and reinforcement learning.

Former OpenAI Executive Barret Zoph Joins Google

Google has reportedly hired Barret Zoph, a former co-founder of Thinking Machines Lab and former OpenAI post-training leader, as a vice president of research.

Zoph has worked extensively on areas including AI training, reinforcement learning and post-training. His reported appointment highlights the growing importance of these techniques as AI companies look for ways to improve existing models after their initial training.

For Google, bringing in researchers with experience at rival AI companies could help accelerate its efforts to improve Gemini’s performance. The company already has one of the industry’s largest AI research organizations through Google DeepMind, giving it access to substantial computing resources and research infrastructure.

Coding Could Become a Major Battleground for AI Companies

The reported development of Gemini 3.8 Flash comes at a time when coding has emerged as one of the biggest commercial applications for generative AI.

AI coding tools are increasingly capable of generating functions, debugging programs, explaining unfamiliar code and handling larger software-development tasks. This has created an important market for companies developing models that can work effectively with complex codebases.

OpenAI and Anthropic have invested heavily in this area, while Google has been attempting to make Gemini more competitive for developers. A strong Flash model could therefore give Google another tool for competing in a market where speed, cost and coding accuracy are all important.

The “Flash” branding also suggests that Google may be positioning the model as a faster and more efficient option rather than simply trying to create its most powerful system. That could make it particularly useful for applications where developers need rapid responses or want to process large volumes of coding requests.

Google's powerful new Gemini AI model is now available in Bard and Pixel  Pro | Technology News - The Indian Express

Credits: The Indian Express

Will Gemini 3.8 Flash Put Google Back in the Lead?

A successful Gemini 3.8 Flash launch would represent progress for Google, but it would not automatically mean that the company has regained the overall AI lead.

The AI model race is increasingly broad. Coding is only one measure of performance, alongside reasoning, mathematics, multimodal understanding, writing, tool use, factual accuracy and autonomous task completion. Different models can also lead in different categories.

The key test for Google’s reported model will therefore come when it is evaluated publicly. Internal testing can provide an indication of a model’s capabilities, but independent benchmarks and real-world use will offer a clearer picture of how it compares with the latest systems from OpenAI and Anthropic.

For now, Gemini 3.8 Flash remains a reported, rather than officially confirmed, development. If Google can translate the internal coding results into strong public performance, however, the model could become another important step in the company’s effort to keep pace in the rapidly evolving AI race.

Tags: AI CodingAI modelsAI technologyAnthropicArtificial IntelligenceGemini 3.8 FlashGoogle AIGoogle DeepMindOpenAIReinforcement Learning
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GoPro Acquired in $285 Million Deal as Company Expands Into Defense, Robotics and Aerospace

Ishaan Negi

Ishaan is a student at Sri Venkateswara College, University of Delhi, where he combines his academic pursuits with a deep passion for technology and storytelling. Ever since his school days, Ishaan has been an avid reader, a thoughtful writer, and an articulate speaker. These interests have naturally evolved into a strong inclination towards journalism, especially in the fast-paced world of tech. Known for his balanced approach, Ishaan is committed to presenting unbiased viewpoints and ensuring every story he tells is rooted in facts and multiple perspectives. Whether he’s reporting on emerging startups, corporate developments, or ethical issues in the tech space, he brings a sharp analytical lens and a curiosity-driven mindset to his work. With a strong foundation in research and communication, Ishaan strives to make complex topics accessible to readers while maintaining depth and nuance. His goal is not just to inform but also to spark thoughtful conversations around the ever-evolving tech landscape.

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