Tech
OpenAI’s Hugging Face breach has reignited the debate over alignment and control
Last week, an unreleased model built by OpenAI breached Hugging Face’s systems during internal testing, and a lot of theoretical research suddenly became very practical. The hack was the first verifiable case of an AI lab losing control of its own model, chaining together exploits to gain access it never should have had. But while the AI industry has been united in its alarm, a split has emerged in how researchers want to respond.
For some, the problem is a basic cybersecurity issue: the sandbox failed to contain the model, and Hugging Face’s cybersecurity systems failed to keep it out. Those problems can be solved by patching bugs and building more robust control and containment methods for increasingly capable AI that is prone to go rogue in autonomous environments.
But another camp takes a more pessimistic view. For them, AI’s rapidly increasing capabilities mean that trying to control rogue models is a losing game. The only robust security comes from making sure the models aren’t trying to escape in the first place — a challenge often referred to as alignment. In alignment terms, the problem is that OpenAI’s model was trying to cheat, and solving that problem is more urgent than short-term containment efforts.
Judging by its public statements, OpenAI is taking both camps seriously. The company has rushed to patch the bugs involved in the hack, and it referenced both alignment and monitoring approaches in its statement after the breach became public. But the company’s response also suggests a philosophy that has left many safety researchers alarmed: rather than slowing down or stopping the development of more capable models, it should instead focus on building stronger cages around them.
“As models take on longer and more complex tasks, failures that evaluations miss may carry greater consequences,” OpenAI said in a post-mortem of the incident. “We will keep working to narrow the gap between evaluation and deployment: testing models over longer trajectories, improving alignment, building monitoring that can intervene, and giving users clearer visibility and control.”

There’s also reason to think OpenAI’s models are becoming less aligned as they become more powerful. According to OpenAI’s system card ,GPT-5.6 Sol is significantly more prone to agentic misalignment than its predecessor, GPT-5.5. In deployment simulations, the company also found the model was more likely to circumvent restrictions, engage in destructive actions, and perform unauthorized data transfers than GPT-5.5. Those figures were largely overlooked on first release, but in the wake of the breach, they’re getting a second look – particularly since Sol was one of the models involved.
In a social media post, OpenAI’s Head of Strategic Futures Dean Ball argued that monitoring and transparency were the best ways to keep those tendencies in check.
“These issues will become more salient as the capabilities of models improve, and as the stakes of their deployment grow,” he said. “The solution is neither alarmism nor complacency. Instead, I believe the solution lies in careful measurement and monitoring, an engineering mentality, and transparency.”
One former OpenAI researcher told TechCrunch that the firm tends to focus on “outer alignment” rather than “inner alignment” — essentially the difference between an AI system that understands a set of values and can represent them convincingly, and one that actually has those values at its core. In this case, outer alignment wasn’t enough to convince the model that it shouldn’t cheat on the test.
OpenAI did not respond to repeated requests for more information.
For alignment-focused researchers, OpenAI’s response isn’t good enough. Zvi Mowshowitz, a writer who focuses on new AI developments, argued that OpenAI’s decision to treat the incident as an infrastructure problem may help solve the immediate cybersecurity issues, but it will fail in the long term.
“This is an alignment problem,” Mowshowitz wrote in a recent Substack blog. “This is the models being misaligned, and all of the OpenAI models showing severe signs of exactly the problem we are all most worried about, in a way that is likely embedded into their training on a deep level. The entire training pipeline needs to be addressed in this light, or it will only get worse.”
Several experts told TechCrunch that the incident is evidence that today’s training methods produce systems that optimize for outcomes rather than internalize human intentions.
Redwood Research, a nonprofit AI safety and security research organization, classified OpenAI’s model behavior in this case as “score-seeking misalignment,” a pattern in which AI models try to get a high score regardless of instructions, side effects, or downstream consequences.
“Models with these alignment properties could set up a ‘Potemkin village’ of false successes to make it look like things are fine when they’re not,” Alex Mallen and Girish Gupta, two researchers at Redwood, wrote in a recent paper.
Score-seeking behavior and other misalignment isn’t unique to OpenAI. Anthropic has published several papers on emergent misalignment behaviors that surface when its frontier models are optimized or placed in autonomous environments, including deception, reward-hacking, and malicious autonomy.
“We still consistently see models trying to circumvent constraints and act deceptively when they are asked to do tasks at the edge of their abilities,” Neev Parikh, an AI safety researcher at alignment nonprofit METR, told TechCrunch via email. “In our frontier risk report, we saw this behavior fairly consistently, despite efforts from companies to try and reduce this behavior.”
Implicit in OpenAI’s response to the Hugging Face incident is the assumption that development will continue on even more capable systems, whether they are suitably aligned at their core or not. Going back to the drawing board isn’t really an option when the business models of AI firms depend on delivering the next generation of models. If it may never be possible to know with certainty that a model is fully aligned, then the practical question comes down to how to safely contain and control increasingly capable systems.
“There’s not yet a good understanding of how to align the most capable AI systems, but there’s much more consensus about how to control them,” Steven Adler, former safety researcher at OpenAI and current chief scientist of Guidelight AI Standards, an organization that publishes a standard for avoiding incidents like the Hugging Face one, told TechCrunch. “Every company has a ways to go in achieving this.”
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Tech
Amazon’s new satellite network for mobile phones could turn up the heat on SpaceX
Amazon filed an application with the Federal Communications Commission for a license to operate a new network of 5,105 satellites that would provide service to mobile phones, with plans to start launching them in 2028.
The move comes several months after Amazon acquired the satellite operations of Globalstar, which provides emergency connectivity to Apple iPhones and internet-of-Things devices. The filing revealed the company’s plans to leverage Globalstar’s radio spectrum to expand these offerings and integrate them with Leo, Amazon’s broadband internet satellite network.
That sets up more competition with SpaceX, which has dominated both the satellite internet and satellite-to-mobile services market. SpaceX will spend $20 billion buying spectrum from Echostar to build out its mobile constellation, one of the key growth strategies described in its IPO filings.
Still, it’s not yet clear how valuable satellite-to-mobile connections will be. Most offer limited bandwidth, suitable only for text messages or emergency situations. The CEO of T-Mobile, which uses SpaceX satellites to offer customers satellite connectivity, said this spring that there wasn’t significant customer interest.
“Just to give you an example, we look at our data in May, and satellite usage is 0.0002% of our total network usage. That’s three zeros,” Srini Gopalan said at a conference in May. “We’re seeing it largely focused on the national parks.”
Amazon has an additional challenge: It doesn’t have its own fleet of rockets. It had planned to depend on Jeff Bezos’ space company, Blue Origin, to launch its satellites, but the company’s rocket, New Glenn, has been delayed and is now grounded following an anomaly that destroyed its launch pad in May. The company had to request an extension to the deadline imposed by its FCC license to build out its network.
While Amazon still lags behind SpaceX, its massive capital reserves — $255 billion in current assets on the books as of the end of April — mean that it can keep investing in its network, while SpaceX’s capital needs appear far more pressing.
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Tech
Antares raises $470M to build nuclear reactors for the U.S. military
Nuclear power startup Antares said Monday that it has raised $470 million to build small reactors for U.S. military bases.
The Series C round, which was led by Paradigm and Caffeinated Capital with participation from Industrious Ventures, Point72 Ventures, and Shine Capital, underscores investors’ growing interest in advanced nuclear startups — a trend fueled by an AI data center building boom and demand for new sources of power. The Series C round included $370 million in equity and $100 million in debt.
Antares has been developing a small modular reactor (SMR) capable of producing between 100 kilowatts and 1 megawatt of electricity, enough to power up to 750 homes.
Like many other advanced nuclear startups, Antares’s reactor uses TRISO fuel, which encapsulates uranium in carbon and ceramic shells. TRISO has been touted for years as a safer alternative to traditional nuclear fuel. The billiard ball-sized spheres of TRISO fuel can be cooled by gases like helium or molten salts. The coating is designed to prevent the fuel from melting in typical high-temperature reactors.
Antares’s demonstration reactor, the Mark-0, reached criticality on June 4 at the Idaho National Laboratory.
The company is one of three finalists in the Pentagon’s Advanced Nuclear Power for Installations program, which will test SMRs on Air Force bases in Colorado and Montana. Antares aims to bring its first electricity-producing reactor online next year, with deployments at U.S. military installations planned for 2028.
Investors have been flocking to nuclear power, and fission in particular, as electricity demand surges in response to data center construction and the broader electrification of the economy. In April, X-energy raised $1 billion through an IPO, while Radiant Energy, Standard Nuclear, and Last Energy have each raised nine-figure rounds since December.
Antares closed its last round, a $96 million Series B, also in December. Altogether, Antares has raised $604 million, based on a TechCrunch analysis of PitchBook data.
Despite investor excitement, advanced nuclear startups face several hurdles to commercialization, including an immature supply chain in the U.S. and challenges with scaling production. Many SMR startups tout the benefits of mass manufacturing, claiming it will significantly reduce costs. But the benefits of mass manufacturing typically take at least a decade to materialize, and no startup has reached that stage yet.
The first SMRs, which are expected to enter service in the early 2030s, are unlikely to be cost competitive with most new power plants. Lazard, which analyzes the cost of energy for a variety of technologies, expects new SMRs to cost about $214 per megawatt hour. At that price, they would cost more than all but the most expensive gas turbines.
Antares hasn’t disclosed its pricing. But given the realities of the market, it’s not surprising that the startup decided to chase contracts for the U.S. military, a famously price-insensitive customer.
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Tech
Threads users can now chat with Meta AI in their DMs
Meta on Monday said it is rolling out its Meta AI chatbot within Threads’ DMs, giving users a way to chat with the AI assistant.
Although Threads users in select markets could already interact with Meta AI in public posts, like people can with Grok on X, this new integration lets users talk with the AI assistant privately.
By giving users an easier way to talk to an AI chatbot, Meta is looking to keep users within its ecosystem, with an eye towards discouraging them from using third-party assistants like OpenAI’s ChatGPT or Google Gemini.
Meta AI is already available within DMs on Meta’s other platforms, including Facebook, Instagram and WhatsApp.

The new integration lets users share Threads posts, images, links, and videos directly with Meta AI. You can ask follow-up questions and dive deeper into topics, too.
The update will be rolled out globally starting Monday, the company says.
Meta noted it’s continuing to test Meta AI in Threads public feeds in a handful of global markets, and is considering feedback before expanding availability more broadly. Users who want to see fewer Meta AI replies in their feed can mute @meta.ai, use the “Not interested” option on any Meta AI post, or hide Meta AI replies that appear on their post.
By further integrating Meta AI into Threads, Meta is positioning its X rival as a place where you can get information and recommendations without having to leave the app.
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