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Software Python Intermediate New project

n8n Automation: Turn Customer Feedback into Action with AI

For this project, I researched how businesses collect, analyze, and manage customer feedback. Many companies receive feedback through forms, emails, surveys, support tickets, and online reviews, but manually reading and organizing every message can take a lot of time. The main idea of this project was to use n8n automation with AI to make this process faster and more useful. The workflow is designed to automatically receive customer feedback, send it to an AI model, and analyze the message based on sentiment, category, priority, and main issue. The AI can identify whether the feedback is positive, negative, a complaint, a feature request, a technical problem, or a general suggestion. After the analysis, n8n automatically sends the feedback to the relevant team or stores it in a connected platform such as Google Sheets, a CRM, Notion, or a database. During the research phase, I focused on several important areas: Customer sentiment analysis AI-based text classification Feedback categorization Priority and urgency detection Automatic summarization Workflow routing Team notifications Data storage and reporting Agentic AI decision-making The project also explores how Agentic AI can go beyond simple text generation. Instead of only analyzing the feedback, the AI helps decide what action should happen next. For example, if a customer reports a serious payment issue, the system can classify it as high priority and send it directly to the support or technical team. If a customer shares a feature request, the workflow can send it to the product team. The final goal of the project is to turn unstructured customer feedback into clear, organized, and actionable information. This helps businesses respond faster, reduce manual work, and better understand what their customers need.

17 views 2026-09-11T10:40:56.312672 13 technologies Video demonstration
n8n Automation: Turn Customer Feedback into Action with AI
At a glance

Quick overview

For this project, I researched how businesses collect, analyze, and manage customer feedback. Many companies receive feedback through forms, emails, surveys, support tickets, and online reviews, but manually reading and organizing every message can take a lot of time. The main idea of this project was to use n8n automation with AI to make this process faster and more useful. The workflow is designed to automatically receive customer feedback, send it to an AI model, and analyze the message based on sentiment, category, priority, and main issue. The AI can identify whether the feedback is positive, negative, a complaint, a feature request, a technical problem, or a general suggestion. After the analysis, n8n automatically sends the feedback to the relevant team or stores it in a connected platform such as Google Sheets, a CRM, Notion, or a database. During the research phase, I focused on several important areas: Customer sentiment analysis AI-based text classification Feedback categorization Priority and urgency detection Automatic summarization Workflow routing Team notifications Data storage and reporting Agentic AI decision-making The project also explores how Agentic AI can go beyond simple text generation. Instead of only analyzing the feedback, the AI helps decide what action should happen next. For example, if a customer reports a serious payment issue, the system can classify it as high priority and send it directly to the support or technical team. If a customer shares a feature request, the workflow can send it to the product team. The final goal of the project is to turn unstructured customer feedback into clear, organized, and actionable information. This helps businesses respond faster, reduce manual work, and better understand what their customers need.

Project video demonstration
Watch the project workflow and result
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