Scaled productionEvidence: Medium65/100

Legal & General Sustainably Transforms Operational Efficiency with Generative AI on AWS

Legal & General Retail (L&G Retail), part of the UK financial services group Legal & General, uses generative AI on AWS to improve customer experiences and automate document processing. The company also applies the AWS Well-Architected Framework Sustainability Pillar to reduce the carbon footprint of its applications.

Organization
Legal & General
Industry
Insurance
Published
May 2026

Reported outcomes

Time: 30 minutes

Time & speed

Why do we believe this?Outcome claims, sources, and evidence checks

Normalized claim

Time: 30 minutes

AWSMay 13, 2026Case studyInferred claimMedium evidence strength

The company can process thousands of documents concurrently in 30 minutes.

Why do we believe this deployment?Customer identity, provider attribution, maturity, and source checks
Customer
Legal & General, L&G Retail
Provider
AWS
Maturity
Scaled Production
Linked source
AWS

Automate document classification and data extraction at scale

Customer identity supportedSource describes one deploymentMaturity supported

Primary read

Use case focus

Showing 3 of 3

  • 1Document Processing Automation
  • 2Customer Service Enhancement
  • 3Sustainability Optimization
  • L&G Retail built on AWS to automate document processing, including classification and data extraction.
  • The company used machine learning capabilities for document management and expanded into generative AI on AWS for new customer-focused use cases.
  • It applied the AWS Well-Architected Framework Sustainability Pillar to assess and improve the sustainability posture of its applications.
  • The company can process thousands of documents concurrently in 30 minutes.
  • The automation freed up five employees for higher-value work.
  • The company is learning how to manage, train, and maintain ML models for future generative AI use cases.
Sources & evidence1
Evidence: Medium65/100Evidence strength
  • Customer explicitly identified
  • Deployment status explicitly supported
  • Primary source available
  • Quantified outcome available
  • Technical implementation details available
Type: Case StudyPublished: May 13, 2026Publisher: AWSEvidence: PrimaryConfidence: High

AI-generated summary. Verify important details with the linked sources before relying on this case.

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