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AI product case study

MeetSage

AI powered meeting capture, transcription, analysis, reports and conversational follow up.

MeetSage is an AI powered meeting intelligence platform built to help professionals, teams, consultants, agencies, and business leaders convert meetings into structured knowledge. The platform combines a web app, MeetSage browser extension, Google Drive integration, AI transcription, AI analysis, PDF reports, and contextual meeting chat.

Project classification: This project showcases a meeting intelligence product for professionals and teams.

MeetSage case-study visual
Byond Boundrys Consulting Enterprise Productivity
Industry
Enterprise Productivity
Client type
Meeting productivity platform
Project stage
Project stage not specified
Evidence
Projected
Delivery scope
Transcription, summarisation, reports and meeting chat

Less manual note taking and review effort

Automated transcription and summarisation reduce repeated manual note preparation.

Clearer action items and decisions

Structured summaries make decisions, action items and follow up responsibilities easier to review.

Searchable meeting context

Conversational search gives users a way to retrieve context from previous meetings.

Who needed the solution

MeetSage is an AI powered meeting intelligence platform built to help professionals, teams, consultants, agencies, and business leaders convert meetings into structured knowledge. The platform combines a web app, MeetSage browser extension, Google Drive integration, AI transcription, AI analysis, PDF reports, and contextual meeting chat. The goal is simple: help users stop losing important meeting insights inside long recordings and scattered notes without paying anything. MeetSage does not just store meetings.

What needed to change

Most teams record meetings, but the value inside those meetings is hard to reuse. Common challenges include: • Long recordings are difficult to review • Action items are often missed • Decisions are not documented clearly • Follow ups take manual effort • Meeting notes are scattered across tools • Teams cannot easily search past discussions • Shared access is difficult to manage • Recordings are stored, but not converted into business intelligence The real problem is not recording meetings.

Long meeting recordings were difficult to reviewThis created avoidable manual review, inconsistency or operational risk in the existing workflow.
Action items and decisions were frequently missedAction items are often missed.
Follow up required manual note preparationFollow ups take manual effort.
Meeting context was scattered across toolsMeeting notes are scattered across tools.
Teams could not easily query previous discussionsTeams cannot easily search past discussions.

Before and after

Previous workflow

  • Long meeting recordings were difficult to review
  • Action items and decisions were frequently missed
  • Follow up required manual note preparation
  • Meeting context was scattered across tools
  • Teams could not easily query previous discussions

Structured workflow

  • Capture or upload meetings
  • Transcribe conversations
  • Structure summaries and actions
  • Query meeting context
  • Review structured outputs

How we approached it

MeetSage uses AI to turn meeting recordings into structured, useful outputs. The platform supports: • AI transcription of meeting recordings • Structured meeting summaries • Action items and decisions • Risks, blockers, and next steps • AI generated follow up email drafts • PDF meeting reports • Chat with meeting transcript • Shared meeting access by email Users can ask questions like: • What were the final action items? • What did the client say about pricing? • Write a follow up message from this meeting. • Summarize only the product discussion.

01

Capture or upload meetings

Accept meeting recordings through the product and supporting extension workflow.

02

Transcribe conversations

Convert audio into time aligned meeting text.

03

Structure summaries and actions

Extract summaries, decisions, owners and follow up tasks.

04

Query meeting context

Allow users to ask grounded questions across the captured meeting.

From input to reviewable output

1Capture or upload meetings
2Transcribe conversations
3Structure summaries and actions
4Query meeting context
5Review transcript and summary
6Approve actions and follow up

What the delivery covered

Business and product workflow

  • MeetSage Extension
  • Ai Transcription Of Meeting Recordings
  • Structured Meeting Summaries

AI, data and automation

  • Structured AI workflow
  • Data processing and validation

Application and cloud engineering

  • Angular
  • FastAPI
  • MongoDB
  • Docker
Scope boundary

The case study covers meeting capture, transcription, summarisation, reports and chat. Production deployments must separately define consent, supported languages and data retention.

How the system is organised

Angular
FastAPI
MongoDB
Docker
JWT

Authenticated access

Meeting records and reports are accessed through authenticated application workflows.

Reviewable summaries

Users can review transcripts, summaries and action items before using them downstream.

Consent and retention requirement

Production publication must document participant consent, recording notices and data retention behaviour.

Expected operational value

1

Less manual note taking and review effort

Automated transcription and summarisation reduce repeated manual note preparation.

Projected
2

Clearer action items and decisions

Structured summaries make decisions, action items and follow up responsibilities easier to review.

Projected
3

Searchable meeting context

Conversational search gives users a way to retrieve context from previous meetings.

Projected
4

Automated reports and summaries

Reports convert captured discussions into reusable records for teams and clients.

Projected
5

More consistent follow up after meetings

A connected workflow supports more consistent follow up after meetings.

Projected

Every component, with its role in the delivery.

Technology choices from the supplied project brief, mapped to the workflow each component supports.

Angular

Web application interface

FastAPI

Backend APIs and workflow orchestration

MongoDB

Document and application data storage

Docker

Containerised deployment

JWT

Token based authentication

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