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PYMNTS.com

Google Accelerates Agentic AI Shift With New Enterprise Platform DeFi Security Suffers New Blow With $3 Million Volo Exploit Uninvited Users Access Anthropic’s Mythos AI Model Block and Uber Expand Partnership Across Several Global Markets OpenAI Pledges $1.5 Billion to PE Enterprise AI Project Podcast: Inside the $9 Billion DeFi Hack That’s Shaking Crypto’s Foundations Synchrony CFO Flags Momentum in Spending and Credit Banks Risk Slowing the Emerging Middle Market Firms Driving Growth Paysafe Expands Digital Wallet Availability Across 18 European Markets Bad Data Can Break Good AI in Payments 50% More Digital Shopping Days Put Parents at the Center of Retail’s Shift 65% Call Insurance Essential. Why Most Spending Isn’t So Clear-Cut Amazon Recasts Marketplace Fraud as a Broader Trust Problem Capital One’s Q1 Shifts Attention From Spending to Strategy Lawmakers Question JetBlue About Surveillance Pricing Allegations Small Businesses Stop Chasing Amazon on Delivery Speed Google Embeds AI Into Chrome for 3.5 Billion Users Adobe Plans Outcome-Based Pricing for New AI Product Suite UnitedHealth Spends $1.5 Billion on AI and Wants Double Back MiCA Forces Crypto Firms to Get Licensed or Get Out Prediction Market Kalshi Targets Crypto Perpetuals New York Sues Coinbase and Gemini Over Prediction Markets Amazon and Anthropic Deepen Ties With Investment and Hardware Pact Commercial Loans Show US Economy Defies Sluggish Forecasts The Web Is Gaslighting AI Agents and Nobody Can Tell OCC Enters the Interchange Fight and Raises the Stakes Amazon Dismisses New Evidence in California Antitrust Suit AI Finds Its Best Customer on Main Street Coinbase Opens Services Marketplace for Agentic Commerce Feds Start Processing $127 Billion in Tariff Refunds for Importers Zenskar Raises $15 Million For Agentic-Powered Revenue Automation Payments Modernization Is Insurance’s Next Big Margin Engine How Visa Is Rewiring Bank Infrastructure for the AI Era Instant Payments Grow but the Real Barrier Is Human The Old-School Card Product Banks May Need Most 43% of SMBs Would Pay to Make Purchases in Installments The Real AI Edge in Payments Comes From Better Judgment In the Age of Agentic AI, Data Control Is Power Verizon’s Dan Schulman Tells CEOs to Be Open About AI Job Cuts Walmart Eyes Stores as Warehouse Space for Same-Day Delivery QVC Was TikTok Shop Before TikTok Shop Loop Raises $95 Million to Bridge Supply Chain Data Gap Cursor Eyes $50 Billion Valuation as AI Coding Demand Surges Commercial Lending Rescues Regional Banks From Consumer Slowdown Anthropic and White House Aim to Make Peace in Friday Meeting Home Depot Buys SIMPL Automation to Support Same-Day Delivery The Riskiest Words in B2B: This Is How We’ve Always Done It France Urges Euro Stablecoins to Break Dollar Dependency Importers Prep for Monday Opening of Tariff Refund Portal Permitting Hurdles and Labor Shortages Threaten AI Data Center Timelines Token Freezes Force CFOs to Rethink Stablecoin Risk X Money Tests Whether Social Commerce Can Hold Consumer Deposits Anthropic Briefs EU Regulators on Mythos Cybersecurity Concerns Welcome to Vibe Ordering, ChatGPT Is Taking Your Order Now Nvidia Says AI Can Finally Make Quantum Computing Work QVC Files Chapter 11 to Slash Debt and Pursue Growth Uber Eats Lets Customers Return Their Retail Purchases Financial Officials Sound Alarm About Anthropic’s Banking Risk 71% of Billion-Dollar Firms Face Agent Identity Threats What If Clearing Had Its Stripe Moment? 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Fraudsters Hack the Signals Behind Identity Trust
PYMNTS · 2026-04-23 · via PYMNTS.com

The cybersecurity arms race, true to its name, is turning into a sprint.

Malware evolves by the hour, ransomware syndicates operate like multinational firms, and state-backed actors are continually probing and even intruding across the edges of critical infrastructure.

As a result, the front line for financial institutions is shifting. Attackers today are not breaking the identity systems powering financial services outright. Instead, they are working within them, manipulating the signals those systems rely on to establish trust.

“We’re seeing a clear move in fraud from artifact manipulation to now signal manipulation, and most worrying, it’s now going to system manipulation,” Henry Patishman, executive VP, Identity Verification Solutions at Regula, told PYMNTS.

Simply put, fraud is shifting from faking inputs to shaping outcomes. Attackers combine valid-looking identity signals — from IDs, biometrics, device and behavioral data across onboarding and authentication — and exploit how systems make decisions. The result: identities that look legitimate, but don’t actually correspond to a real person.

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That emerging threat, one that industry insiders are beginning to call “identity signal manipulation,” is forcing a rethink of how digital identity is verified across payments, banking and online platforms.

“In a world where everything can look real, trust will depend on how well you understand the integrity of identity signals, not just their appearance,” Patishman said.

The question is no longer whether a user was verified at a moment in time, but whether their identity remains consistent and trustworthy across sessions, devices and behaviors.

Fraudsters Move From Spoofing to Orchestration

What distinguishes this new threat from earlier forms of fraud is not just sophistication, but orchestration. Attackers are no longer spoofing a single attribute; they are coordinating multiple signals simultaneously to construct a convincing digital identity.

A recent case in the Netherlands cited by Patishman can help to illustrate the shift. A single attacker successfully opened nearly 50 bank accounts using real stolen passports, a live participant in front of a camera, and subtly altered biometric inputs. Each individual component appeared legitimate and collectively they were able to tell a false story that banking fraud systems failed to detect.

“The interesting part was that real documents, real selfies, and a real human were all part of the process, but manipulated just enough to pass the controls,” Patishman said.

And that is the emerging essence of signal manipulation: not falsifying identity outright, but bending reality just enough to slip through fragmented defenses.

What makes these attacks particularly effective is how identity verification systems are structured. Many still treat verification as a one-time event, like a checkpoint at onboarding or login. But in practice, identity is expressed across a sequence of interactions — from onboarding to login to transactions — each generating its own signals.

“One of the biggest shifts is that identity verification is no longer a single decision,” Patishman said. “It’s a chain of signals over time.”

Fraudsters have adapted accordingly. Rather than attempting a single high-risk breach, they probe for weak links across that chain, such as by injecting synthetic video into a camera feed, replaying biometric sessions, or subtly altering device data. Each signal may pass independently. The deception now lies in how they fit together.

Trust at the Source, Not the Outcome

The fraud realities facing financial institutions is also driving a deeper conceptual change in identity verification, one that is moving away from validating outcomes and toward validating origins.

The emerging model emphasizes what might be called “signal provenance”: understanding where data comes from, how it was captured, and whether it has been altered along the way. It’s an approach that borrows from legal frameworks, where evidence must be supported by a clear chain of custody.

“Trust can’t be inferred from outcomes anymore. It has to be proven at the point of capture,” Patishman said. “A biometric match proves similarity, not authenticity.”

Traditional systems often focus on results such as a document or face match. But attackers increasingly manipulate inputs before those checks even occur, producing outputs that appear valid but are fundamentally compromised.

“Biometrics don’t fail,” Patishman said. “But the systems around them can fail to verify their authenticity.”

In practice, systems may correctly match biometric data — but still fail to detect that the input itself has been manipulated or synthetically generated. The result is a valid match built on compromised data.

At the same time, while many organizations have invested in strong individual tools, those tools often operate in isolation.

“Fraud doesn’t happen in one signal, it happens in gaps between them,” Patishman said. “The next generation of identity verification isn’t a better check with a better tool. It’s a coordinated system that understands how signals relate to each other.”

This means a document, a biometric check, and device or behavioral data may each appear valid on their own, but still not belong to the same identity. When these signals are verified separately, those inconsistencies can go unnoticed.

Closing those gaps requires orchestration: systems that correlate signals across sources and over time, identify inconsistencies, and adapt dynamically to risk. Rather than a series of independent checks, identity verification becomes an evidence-based process.

Ultimately, as Patishman said, “security is now much more reliant on system and process design, not just tool accuracy.”