Meta has unveiled Muse Spark 1.1, saying the frontier AI model rivals leading LLMs on coding, computer use, and agentic AI benchmarks while undercutting OpenAI and Anthropic on API pricing, potentially lowering the cost of deploying AI agents in enterprises.
Meta unveiled Muse Spark 1.1 on Thursday, pairing frontier-model performance with aggressive pricing in a move that analysts say could pressure rivals such as OpenAI and Anthropic and reshape enterprise AI procurement decisions.
Meta is betting that lower inference costs can help it gain ground in the enterprise AI market with the launch of Muse Spark 1.1, a frontier model that rivals top competitors on key benchmarks while costing a fraction as much to deploy.
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Muse Spark 1.1, which is currently in public preview and available via the Meta Model API, will cost $1.25 per million input tokens and $4.25 per million output tokens, the company $5 per million input tokens and $30 per million output tokens for GPT-5.5, while Anthropic at $2 per million input tokens and $12 per million output tokens.
Lower prices may open doors, not close deals
That sheer difference in API pricing, according to , cloud associate at FinOps services providing firm ZopDev, pointed out that the price is not a guarantee of adoption, despite the fact that most enterprises are likely to deploy the Muse Spark 1.1 for new projects.
“Cost becomes the primary differentiator only once the model is judged good enough. Developers don’t pick the cheapest model; they pick the cheapest model that clears their quality bar. So, price is the reason people show up, capability is the reason they stay,” Bandta said.
Similarly, CIOs are also likely to put more emphasis on the model’s security, data protection, uptime, audit trails, regional availability, support, and predictable behavior, rather than just the price, Jain said.
That distinction, according to Bandta, reflects a familiar pattern in enterprise technology buying: “This is the same lesson we saw in the cloud, where the cheapest provider on paper rarely won the biggest enterprise share. Price is one input in the total cost of ownership that includes risk, control, and switching cost, not the whole decision.”
Even so, the lower pricing could still shift the balance of power in enterprise procurement, Jain said: “This could help CIOs negotiate larger volume discounts, committed-use agreements, and better pricing from OpenAI, Anthropic, and cloud providers. It also strengthens the case for multi-model procurement rather than depending on one vendor.”
“Companies that do not even adopt Muse Spark can also use its pricing as evidence that frontier-level inference is becoming cheaper,” Jain added.
Meta’s pricing could reshape competition between rivals
Analysts pointed out that Meta’s new model could intensify competition in the frontier model market by forcing rivals to compete on inference economics and model sizes.
“It’s a real shot across the bow, and I’d expect OpenAI and Anthropic to respond on two fronts. Some of it will be price, cheaper tiers, and better cached and batch rates, because Meta has just reset what the market thinks a frontier token should cost,” Bandta said.
“But the incumbents won’t win the race with lower-priced offerings and more flexible pricing models. I expect them to lean harder into the things price can’t buy, governance, security, reliability, and enterprise support, to justify premium pricing,” Bandta added, likening the shift to an “early innings” of a price war that the industry saw with the expansion of cloud.
“The cloud infrastructure price war showed that while prices fell over time, vendors ultimately differentiated themselves through platform capabilities rather than cost alone,” Bandta further added.
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