Evidence: Medium50/100

Alnylam Transforms Product Complaint Management with Generative AI Using Amazon Bedrock

Alnylam Pharmaceuticals uses generative AI to streamline product complaint management and internal knowledge access. The company built a product complaints intake and triage prototype with Amazon Bedrock and Amazon S3, and a Slack-integrated internal assistant called AskALNY for employee information retrieval.

Industry
Pharma
Published
May 2026

Reported outcomes

Time: 3–4 days

Time & speed

Time: Approximately 15 minutesTime: Approximately 30 seconds
Why do we believe this?Outcome claims, sources, and evidence checks

Normalized claim

Time: 3-4 days decrease

AWS Customer StoriesMay 13, 2026Customer storyInferred claimMedium evidence strength

Reduced product complaint triage time from 3–4 days to hours.

Normalized claim

Time: 15 minutes decrease

AWS Customer StoriesMay 13, 2026Customer storyInferred claimMedium evidence strength

Reduced information searching time from about 15 minutes to about 30 seconds.

Normalized claim

Time: 30 seconds decrease

AWS Customer StoriesMay 13, 2026Customer storyInferred claimMedium evidence strength

Reduced information searching time from about 15 minutes to about 30 seconds.

Why do we believe this deployment?Customer identity, provider attribution, maturity, and source checks
Customer
Alnylam Pharmaceuticals
Provider
AWS
Maturity
Unknown

No explicit deployment-stage evidence found.

Customer identity supportedSource describes one deploymentMaturity evidence evaluated

Primary read

Use case focus

Showing 3 of 4

  • 1Workflow Automation
  • 2Document Processing
  • 3Knowledge Management
  • Alnylam and AWS built a generative-AI intake and triage prototype in about 3 months using Amazon Bedrock to interpret complaint content, generate decision support output, and map data into the quality system.
  • The solution stores extracted complaint data in Amazon S3, uses confidence scoring and exception handling, and automates record creation in the quality system.
  • Alnylam also built AskALNY, a Slack-integrated internal assistant using Amazon Bedrock and retrieval-augmented generation to help employees find information and summarize documents.
  • Reduced information searching time from about 15 minutes to about 30 seconds.
  • AskALNY is used by more than 2,000 employees and 1,000 contractors.
Architecture

The solution uses Amazon Bedrock foundation models to read complaint content, infer and generate outputs, apply rule-based categorization, and create records automatically. Extracted complaint data is stored in Amazon S3. The system adds confidence scoring across comprehensiveness, accuracy, relevance, and clarity, and routes exceptions for human review. A separate internal assistant, AskALNY, is integrated with Slack and uses retrieval-augmented generation for more accurate employee responses.

Sources & evidence1
Evidence: Medium50/100Evidence strength
  • Customer explicitly identified
  • Primary source available
  • Quantified outcome available
  • Technical implementation details available
Type: Customer StoryPublished: 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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