TL;DR
- Justin Drake warned that AI-assisted mathematical advances could threaten ECDSA before quantum computers do, urging controlled preparation rather than claiming the signature scheme has already failed.
- Yehuda Lindell rejected the warning as unsupported by evidence, while Haseeb Qureshi argued that uncertainty and rapid mathematical progress justify precaution.
- Jacob Creech said Solana’s Ed25519 architecture gives users a different migration path, reducing the need for immediate bunker-mode action on the network today.
Ethereum researcher Justin Drake’s warning that artificial intelligence could accelerate a classical mathematical break of ECDSA has triggered different reactions across crypto. Drake argued that a worst-case breakthrough might arrive within months rather than years and urged controlled preparation for “bunker mode,” including migration to fresh addresses whose public keys remain hidden behind hashes. The dispute is not about ECDSA being broken today, but whether rapid AI-assisted mathematical progress justifies precaution before evidence of a practical attack exists. The debate adds urgency to work on post-quantum cryptography across blockchain networks.
Cryptographers Split Over the Probability and Timing of an ECDSA Break
Coinbase Head of Cryptography Yehuda Lindell rejected the warning, saying there is no evidence that the decades-old hardness assumptions underpinning elliptic-curve cryptography have weakened. He argued that citing advances in AI mathematics does not establish a logical basis for concluding that elliptic-curve discrete logarithms are nearing a classical solution. Lindell’s objection centers on evidence: current progress in mathematical AI does not, by itself, demonstrate a practical path to breaking ECDSA. His response highlights the gap between preparing for theoretical cryptographic failure and claiming that AI-driven cryptanalysis has materially reduced ECDSA’s security today.
I wasn’t going to comment since this is a really bad take IMO, but since it’s taken off I feel the need to. To my understanding, there is no evidence whatsoever pointing to a break of decades old hardness assumptions like elliptic curve cryptography. 1/n https://t.co/RdZ1iS8iQn
— Yehuda Lindell (@LindellYehuda) October 8, 2026
Dragonfly managing partner Haseeb Qureshi took the opposite risk-management view, calling Drake’s warning a “very sober call.” Qureshi said the concern is not primarily quantum computing, but conventional mathematics potentially overturning cryptographic hardness assumptions that remain unproven. He argued that avoiding unnecessary exposure is reasonable given accelerating progress in mathematics. Qureshi’s position does not claim that ECDSA has failed; it argues that uncertainty itself can justify low-cost precautions when the consequences of a breakthrough would be severe. That reasoning mirrors the wider quantum-security debate over how early networks should begin defensive migration.

Doomerism has now hit cryptography…
Unfortunately, on reflection, I think this is a very sober call. No reason to be taking unnecessary risk with all of the rapid progress happening in mathematics. The risk is not quantum, but just conventional mathematics overturning unproven… https://t.co/aD69zpN4vg
— Haseeb Qureshi >|< (@hosseeb) October 7, 2026
Unlike many networks, Solana users don't need to go into "bunker mode" ahead of an accelerated quantum timeline or classical attack provided by AI.
Solana uses Ed25519, where each signing key is derived by hashing a secret seed. Breaking the curve, whether by a quantum computer… https://t.co/2FwiDEeEA1
— Jacob Creech (@jacobvcreech) October 8, 2026
Solana Foundation Vice President Jacob Creech argued that Solana users face a different migration path because the network uses Ed25519. He said signing keys are derived from a hashed secret seed that never appears onchain, allowing a future upgrade to use hash-based proof of seed knowledge before moving users to a quantum-resistant signature scheme. Creech therefore argues that Solana users do not need immediate “bunker mode,” even under an accelerated quantum timeline or an AI-enabled classical attack. The contrasting responses show that the debate involves network-specific key architecture as much as the probability of a mathematical breakthrough, reinforcing the importance of migration design alongside cryptographic research.





