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Chip startups keep drawing competitive rounds
Benchmark won a contested bid to lead a new round in Tendrils Compute, an early-stage chip startup based in Cambridge, UK, and led by Nils Cremer. People familiar with the deal say Tendrils is already discussing a quick follow-on that could value it above $1B . The technical bet is unusual: general-purpose chips built on interaction nets, a graph-based computing model. The pitch is that CPU speed becomes a bottleneck as agents chain inference steps and tool calls . Benchmark has done this before. It co-led Cerebras's 2016 Series A and earned about 20.5x when Cerebras went public .
Volantis announced an $88M Series A for optical interconnects that target AI's memory bottleneck. Its claims include inference at up to 10,000 tokens/sec per user on models larger than 10T parameters. It says its next chip iteration has already taped out . Newcomer lists other recent chip rounds:
- Etched: $700M at a $21B valuation
- Fractile: in talks at $6.5B after an Anthropic supply deal
- OLIX: $312M at $3.3B
- Euclyd and Delos Data: nine-figure rounds
There is a counterweight. Cerebras traded as high as $386 after listing but now sits close to its $185 IPO price .
Cheap "decision models" are becoming their own category
Perplexity is open-sourcing pplx-decider-27b, a multimodal model that outputs a probability distribution over a fixed set of answers instead of free text. It is served through a Decisions API at $0.04 per million input tokens with free output, and Perplexity says the price will drop further . Cloudflare open-sourced its first homegrown decision models, clef and clef-flash, on Workers AI the same day . Harrison Chase described the use case: cheap typed answers for small calls inside a harness, such as routing, approvals and judging, with a big model handling everything else .
Jev from TypeSafe AI started this category. On 20VC x SaaStr, the hosts said TypeSafe raised a $40M seed at $200M and is now in talks to raise more than $1B at a valuation above $10B. Jason Lemkin cited Jev at 17% of OpenRouter traffic . With two open-weight entrants priced about the same, the main question for anyone underwriting TypeSafe at that valuation is how defensible it is.
LangChain published data supporting routing. In a 973-thread A/B test, its Open SWE harness either routed each task to the cheapest adequate model tier or always used GPT-6 Astra. Merged-PR rates were 29.2% routed and 27.3% control, a difference that was not statistically significant (p=0.49). Median cost per thread fell 64%, from $2.61 to $0.94 . A fast-model-only arm was stopped within a day because output quality was too low .
The 20VC x SaaStr panel on venture now
Benchmark's Jack Altman joined the panel because Benchmark co-led Instinct's $1B round at $10B. That round came 33 days after Instinct was raising at $2.5B. The founder says Instinct is approaching $1B in annual transactions, more than half of them travel . Main threads:
- Neolab exits. AMD's $8.2B all-stock purchase of World Labs, about 2.5 years after founding, was described as the first big neolab exit. One partner's tally counts 102 neolabs that have raised more than $70B. Altman's answer was that about 10 companies can now do $10B acquisitions, which he called faster than an IPO .
- Seed sizing. Altman called $3–6M checks for 8–15% ownership "broken in many lanes." His reasoning: labs need $200M or more, and well-networked founders skip straight to $50M rounds. Lemkin's view is that $2–3M is still the natural seed size when investors aren't competing to fund you .
- Inference and open weights. Modal tripled its valuation to $15B and Baseten is in talks at $26B. Altman called inference an index bet on everything outside the labs . Lemkin thinks open-weight share has peaked. He cites closed-model price cuts and says he couldn't find an enterprise at Dreamforce willing to run mostly China-origin open weights. Altman expects more enterprise post-training on open weights, but thinks compute ownership decides the outcome .
- IPOs. Oura pulled a $15.62B IPO two days before pricing despite reports the book was oversubscribed. One panelist pointed to Forerunner's plan to sell its entire stake, which makes sellers very price-sensitive. Altman noted no AI-native application company has gone public yet, and expects several in 2027 if markets hold .
SaaStr's reading of a16z's market deck adds data on how spread out outcomes have become:
- Under-one-year-old B2B companies are growing more than 500% year over year. Mature B2B companies are at about 24% .
- 55% of US unicorns have less than two years of runway .
- For the 2024 vintage, top-decile VC net IRR is 40.5% against a -3.3% median. Median DPI is 0.00x for every vintage since 2021 .
Early-stage rounds and teams
- doxxnet (Barrett Lyon, co-founder of Prolexic) raised $38M led by a16z. The product is private networks for people and their AI agents with no server in the middle, and the company says it has blocked 38M+ threats since December . a16z's thesis is that agents widen the personal attack surface .
- Halluminate builds reinforcement-learning environments for knowledge work beyond coding, starting with finance. With fewer than 10 people, it works with four of the top five closed US labs and recently raised a $30M Series A. Its founders argue verification matters more than task volume .
- Harmonic's Hot 25 ranks Resolve AI first for the third time. The Latent Co is the top newcomer at #2, with Prime Intellect, Strala AI and Trajectory Labs also new to the list .
- YC promoted founders Vivian Shen (Juni, Acely) and Raphael Schaad (Cron) to General Partner . Garry Tan says the partnership now has 19 members, the largest in its history .
- Imbue Studio went to waitlist. It is pitched as a personal computer you shape by describing what you want, open source under FSL, runnable locally, and able to switch between AI providers .
- AMI Labs. Yann LeCun says it is still in research with no short-term product plan, has 50–60 staff across Paris, New York, Montréal and Singapore, plans more funding rounds to pay for compute, and does not intend to be acquired .
Models and research
Google DeepMind's Gemini 4 Argon is available first only to government users and trusted cyber defenders . Artificial Analysis scores it level with GPT-6 Astra, at $1.99 per task versus $3.26. The savings come from introductory pricing, not efficiency: Argon uses 62K output tokens per task against Astra's 27K . Vals lists 262K maximum output tokens against Google's 1M claim .
LlamaIndex says its Extract v2.5 document-extraction agents beat Opus 5.5 and GPT-6 Sol while costing 30% to 4x less . arXiv now limits each submitter to two submissions per calendar month .