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70,000+ Annotated Support Tickets for Customer Support AI Training Dataset

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70,000+ Annotated Support Tickets Dataset for Customer Support AI 3

70,000+ Annotated Support Tickets for Customer Support AI Training Dataset

A fast-growing SaaS company in the United States wanted to improve its customer support automation system. The company receives thousands of support tickets every day from customers using its software platform.

To build an intelligent support chatbot and automated ticket routing system, the company needed a large and well-structured customer support AI training dataset. However, their existing tickets were unstructured and required labeling before they could be used to train AI models.

The company partnered with Dserve AI to create a 70,000+ annotated support tickets dataset for training their customer support automation system.

Project Objective

The main objective of the project was to build a high-quality customer support AI training dataset using real support tickets. This dataset would help train machine learning models to understand customer issues and automatically categorize support requests.

The project focused on:

  • Annotating customer support tickets

  • Labeling ticket intent and category

  • Preparing a structured customer support AI training dataset

  • Improving chatbot response accuracy

  • Enabling automatic ticket routing


Key Challenges

Customer support tickets often contain informal language, spelling mistakes, and different ways of describing the same problem. This makes annotation and classification challenging.

The dataset also needed consistent labels so that AI models could learn correctly.

ChallengeDescription
Unstructured TextCustomers write tickets in many different ways
Multiple Issue TypesSame issue described differently by users
Large Ticket Volume70,000+ tickets required annotation
Label ConsistencyAll annotations needed consistent intent labels
Data QualityRemoving duplicate or unclear tickets

Our Solution

Dserve AI built a scalable annotation workflow to process and label thousands of customer support tickets efficiently. Our team created clear annotation guidelines and trained annotators to classify customer queries accurately.

Each support ticket was carefully reviewed and labeled based on its intent and issue category.

Our solution included:

  • Intent classification for support tickets

  • Issue category labeling

  • Sentiment tagging for customer messages

  • Data cleaning and filtering

  • Multi-level quality review for accuracy

The final dataset helped train AI models to understand customer problems and respond faster.

Project Impact

The annotated dataset significantly improved the client’s AI support system and chatbot performance.

MetricImpact
Support Tickets Annotated70,000+
Annotation Accuracy98%
Intent Categories25+
AI Response AccuracyImproved by 35%
Project Timeline6 Weeks
 

Business Outcomes

After training their AI models using the customer support AI training dataset, the client successfully improved their support automation system.

The AI model was able to understand customer queries better and route tickets automatically to the correct support teams.

Key business outcomes included:

  • Faster response to customer queries

  • Reduced manual ticket sorting

  • Improved chatbot performance

  • Better customer support efficiency

  • Scalable AI support system

Extraction Accuracy Achieved
0 %
faster time-to-deployment
0 %

"Dserve AI helped us build a high-quality dataset that significantly improved our support automation system. Their team handled large-scale ticket annotation efficiently and delivered excellent quality."

— David Richardson, Director of AI Operations

Why Dserve AI?

Dserve AI provides high-quality AI training datasets and data annotation services for companies building artificial intelligence systems.

Companies choose Dserve AI because of:

  • Experienced annotation teams

  • High-accuracy datasets

  • Scalable data processing

  • Fast project delivery

  • Custom AI dataset solutions


Get Your Dataset Sample

Looking for a customer support AI training dataset for your AI project?

Dserve AI can help you build custom datasets for machine learning models.

Request a dataset sample from our team.


 

Request Your AI Dataset

Get access to expert-annotated datasets to evaluate quality, accuracy, and clinical relevance before starting your project. Submit the form and our team will share curated samples along with dataset documentation.

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Everything you need to know about

A Document AI training dataset is a collection of annotated business documents such as invoices, receipts, and forms that are used to train artificial intelligence models to automatically extract and understand structured information from documents.

The dataset included a wide range of business documents such as invoices, purchase orders, receipts, financial statements, and other structured and semi-structured documents used in enterprise workflows.

Dserve AI annotated over 100,000 business documents, ensuring high accuracy and consistency to support reliable training of Document AI models.

Key fields annotated in the dataset included:

  • Invoice number

  • Vendor name

  • Invoice date

  • Total amount

  • Tax details

  • Purchase order numbers

  • Line items and product details

These annotations helped train AI models to automatically extract structured data from documents.

Yes. Dserve AI provides custom dataset creation services tailored to different industries and AI applications, including document AI, computer vision, speech AI, and large language model training.