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SOLUTIONS / FRAUD

Fraud Risk & Investigation
Intelligence

Organized fraud costs banks, agencies, and enterprises billions. Siloed controls hide the bigger picture.
Connect fraud signals across your entire program to uncover coordinated activity earlier, close cases faster, and prevent losses.

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The challenge

Keep Your Tools. Fix the Gaps.

  1. Can you check for fraud signals across systems, business lines, and data sources at once?

  2. Do your investigations require manual data gathering, multiple handoffs, or even IT support?

  3. Have you already invested in anti-fraud technology, only for fraudsters to quickly find workarounds?

The solution

DataWalk For Connected Anti-Fraud

Step 01

Connect All Fraud Relevant Data

DataWalk brings together previously siloed internal and external data relevant to fraud prevention. Cybersecurity, Customer Service, external registries, and anything else.

Payments & cardsKYC / CDDChargebacksLogins & devicesCall centerOther systemsCyber alertsRegistriesWatchlistsBreach dataConsortiaCredit bureausOther sourcesAdverse media
CustomerAccountTransactionAddressDevice

Step 02

Reveal the World Behind Rows and Columns

DataWalk organizes data to reflect your operations, resolving real-world objects and revealing the relationships between them.

Step 03

See What Individual Controls Cannot

DataWalk lets you detect, investigate, and monitor networks, fraud rings, and suspicious patterns that individual controls cannot see.

CustomerAccountTransactionAddressDeviceShared device4 accountsShared address6 applicantsFraud ring6 hops
Payments & cardsKYC / CDDChargebacksLogins & devicesCall centerOther systemsCyber alertsRegistriesWatchlistsBreach dataConsortiaCredit bureausOther sourcesAdverse media[ + ][ + ]Instant paymentsChat messagesCustomerAccountTransactionAddressDevicePayeeWallet

Step 04

Adapt Faster Than the Fraudsters Targeting You

DataWalk lets you quickly adapt to new fraud schemes, changing tactics, and evolving hypotheses.

Agentic AI

AI Inherits Your Fraud Blind Spots

Learn more about AI with DataWalk

DataWalk gives agents connected enterprise knowledge and an analytical engine to work through complex fraud questions at scale.

Ground their answers in computed, deterministic results, not probabilistic guesses, while keeping access under your control.

Let Agents Use What You Already Know
Every new agent connects through the same shared model: resolved entities, mapped relationships, shared business definitions, already in place. Fewer tokens rebuilding context. More of the budget answering the question.
Every Answer, Under Your Control
Every agent request runs under the caller's DataWalk permissions, enforced at query time, logged for review, and traceable back to the records that produced it.
AI Agent
Find people behind this suspicious transfer network
AUDIT TRAIL verifiable intermediate steps
  • People 11.1M → 2
  • Bank 20.4M → 6
  • Tx 27.3B → 782
  • Bank → 156
  • Tx → 60.6k
Ask a follow-up…
Proof

The Impact

$10–100M+

in additional fraud prevented

Hours, not weeks

to close complex cases

<20 weeks

to go live

27.3BTRANSACTIONS20.4MBANK ACCOUNTS14.2MPHONES11.1MPEOPLE8.7MADDRESSES62.5kBTS STATIONS
Case study

Always Ahead: Building the Safest Digital Bank in America

DataWalk allowed us to bring all of our data together in one place, standardize it for the first time, and finally run true cross-business-line analysis. Before that, we were completely siloed.
~$20M
in fraudulent attempts identified
Tens of billions
of records analyzed collectively
19 weeks
to go live
Use cases

Addressing Fraud Challenges Across Industries

For Banking

Accounts, applications, payments and the people behind them.

Identify connected activity across accounts, identities, devices, and beneficiaries.

WHAT TO LOOK ACROSS

  • Mule accounts
  • Stolen or manipulated identities
  • Shared devices and beneficiaries

Connect digital activity with the identities, accounts, devices, beneficiaries, and counterparties behind it to uncover account takeover and coordinated fraud.

WHAT TO LOOK ACROSS

  • Account takeover and compromised credentials
  • Suspicious account and beneficiary changes
  • Shared devices, accounts, and counterparties

Reveal connections between applications that appear to come from unrelated borrowers.

WHAT TO LOOK ACROSS

  • Synthetic identities
  • Manipulated applications
  • Reused addresses and devices

Connect employee activity with transactions, counterparties, and external relationships.

WHAT TO LOOK ACROSS

  • Unusual access patterns
  • Connected-party transactions
  • Undisclosed relationships and collusion
Resources

Whitepapers & Research

View All
WHITEPAPER

5 Reasons Why Disparate Data Blocks AI Investigation Agents

READ MORE
WHITEPAPER

Scaling Up Agentic AI for Anti-Financial Crime

READ MORE
WHITEPAPER

Seeing the Unseen: Why Good AI Begins With Connected Data

READ MORE

Find the Anti-Fraud Intelligence Hiding in Your Data

Stop more fraud by connecting the signals across the systems and controls you already have.

FAQ

Frequently Asked Questions

Find your answer

What is DataWalk's fraud risk and investigation intelligence solution?
DataWalk is an analytics platform that connects fraud-relevant data – including cybersecurity, customer service, and external registry data – across previously siloed systems into a single connected view. It resolves real-world objects such as accounts, identities, and devices and reveals the relationships between them, allowing investigators to detect fraud rings and suspicious patterns that individual controls cannot see on their own.
How does DataWalk detect fraud across different systems and business lines?
DataWalk brings together your internal and external data sources, including cybersecurity, customer service, registry data, and anything else, into one connected model so investigators can analyze activity across business lines instead of within separate silos. DataWalk has enabled banks to standardize their data and run true cross-business-line analysis after previously operating in isolation. This connected view surfaces coordinated activity that single-system controls miss.
How is DataWalk different from traditional anti-fraud systems?
Traditional fraud systems operate in data silos, which hides coordinated fraud activity that spans multiple systems. DataWalk instead organizes data into one ontology and one connected state, running graph, search, and SQL queries through the same engine rather than copying data into separate tools for each workload. This allows teams to detect and investigate fraud rings, synthetic identities, and shared-device patterns that siloed, individual controls cannot reveal.
How long does it take to deploy DataWalk for fraud investigation?
Deployment timelines vary by organization, but DataWalk's case study with Ally Financial reports a go-live time of 19 weeks, during which the bank brought together and standardized data across business lines for cross-business-line fraud analysis.
Which industries does DataWalk support for fraud prevention?
DataWalk supports fraud investigation in banking, insurance, government, and enterprise organizations. In banking it addresses deposit, digital banking, loan, and insider fraud; in insurance it covers claims, application, provider, and insider fraud; in government it covers benefits, procurement, grant, and insider fraud; and for enterprises it addresses procurement, third-party, supply chain, and e-commerce fraud. Each use case connects the identities, accounts, and relationships specific to that fraud type.
How does DataWalk support AI agents in fraud investigations?
DataWalk gives AI agents governed enterprise knowledge and graph computation they can work through step by step, so an agent can inspect a result and then narrow, branch, or change direction during an investigation. This matters because AI inherits the blind spots in the data beneath it: if that data is fragmented, inconsistent, or incomplete, AI automates the same uncertainty investigators already face. DataWalk connects that data so the evidence behind an AI-assisted investigation can still be checked.