Ramp 数据显示 8 月头部企业人均 AI 支出下滑近 10%

内容摘要
概述: 根据Ramp公司收集的70,000家企业的支出数据,8月份企业对AI工具的采用速度放缓。尽管AI产品在Ramp客户中的支付比例仅上升了0.4%,但AI支出在头部企业中的人均支出下降了近10%,这引起了人们对AI投资放缓的担忧。 要点: 1. Ramp数据显示,8月份企业对AI工具的采用速度放缓,AI产品支付比例仅上升了0.4%。 2. 头部企业中,AI支出的人均支出下降了近10%,降至7,205美元。 3. AI模型服务的使用率仅为6.4%,增长缓慢,不足以推动更广泛的企业采用。 4. AI实验室正专注于吸引非技术用户使用AI协作工具。 5. AI模型价格下降,平均每百万个token的成本从3月份的1.15美元降至0.68美元。
概述:
根据Ramp公司收集的70,000家企业的支出数据,8月份企业对AI工具的采用速度放缓。尽管AI产品在Ramp客户中的支付比例仅上升了0.4%,但AI支出在头部企业中的人均支出下降了近10%,这引起了人们对AI投资放缓的担忧。

要点:
1. Ramp数据显示,8月份企业对AI工具的采用速度放缓,AI产品支付比例仅上升了0.4%。
2. 头部企业中,AI支出的人均支出下降了近10%,降至7,205美元。
3. AI模型服务的使用率仅为6.4%,增长缓慢,不足以推动更广泛的企业采用。
4. AI实验室正专注于吸引非技术用户使用AI协作工具。
5. AI模型价格下降,平均每百万个token的成本从3月份的1.15美元降至0.68美元。

The adoption of AI tools by businesses slowed in August, according to spending data at 70,000 companies collected by the payments company Ramp. The latest survey shows 56% of Ramp customers paid for AI products in August, rising just 0.4% from the month before.

This isn’t the first time Ramp’s metrics have shown adoption slowing down. Last year, the company’s AI index showed little to no growth in adoption between August and October, only to have growth pick up again as the year finished.

Still, the extreme pace of the AI buildout means even small slowdowns can be cause for concern. The gobsmacking investment in AI infrastructure by frontier labs and hyperscalers rests on the hope that there is plenty of revenue out there to pay it back. Thus far, usage has grown steeply, particularly as software engineers adopted agentic coding tools — but if that adoption slows down, revenue is likely to slow as well.

Ramp’s figures may overstate overall adoption, thanks to the company’s techy clientele: An ongoing US Census Bureau survey of AI adoption updated on August 23 shows just 22% of businesses report using AI. Ramp’s survey isn’t necessarily representative of the market, but it’s one of the few direct spending data sets available and potentially a leading indicator.

To be sure, this data is from August, when much of the industry is on vacation. That may explain the doldrums. But there are other warning signs for companies that depend on token spend, per Ramp economist Ara Kharazian.

First, a major decline in AI spend per employee in the top 1% of firms in his sample, falling nearly 10% to $7,205. That may be the vacation-token factor, but it also speaks to falling token costs. As OpenAI and Anthropic have cut prices, average token costs have declined to $0.68 per million tokens, as opposed to the 2026 peak of $1.15 per million tokens in March.

Image Credits:Ramp / Ramp

The data suggests that the labs have yet to make up for the price cuts with growing volume. And the same incentives have many customers choosing to use older, cheaper models like OpenAI’s ChatGPT 5.6-Terra and Anthropic’s Sonnet instead of the more powerful frontier releases. Employees at frontier labs have said much of the cost of training is recouped in the first weeks of a new model’s release, and slower adoption could threaten that dynamic.

Still, for all the talk of open-weight models threatening the frontier labs, only 6.4% of AI-spending businesses used model-serving or inference platforms in August; a share that’s growing steadily but not fast enough to drive the dynamics of broader business adoption.

“We are showing that competition between OpenAI and Anthropic is making AI more accessible, and also driving the price down for companies—and not just driving the price down, but driving spend down at the top 1% of companies that previously the market was expecting to drive much of the growth going forward,” Kharazian said.

That also helps explain the focus at AI labs on winning over non-technical users for AI co-working tools.

This data point — dare we call it a blip? — could be a bad sign if you’re a model-builder or a hyperscaler with a couple hundred billion of chips on order. But, Kharazian notes, “it depends on who you are in the market. If your company is using AI, it’s great.”

原始发布方:TechCrunch:AI(RSS)

原文时间:2026-09-09 22:18:34 +08:00

阅读原文 · 数据来源:AIHOT

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