Zoho DataPrep logo

Zoho DataPrep

Freemium
訪問

Zoho DataPrep is a cloud-based, no-code platform for preparing, moving, and monitoring data pipelines. It helps data analysts, business users, data engineers, and data scientists clean datasets, automate recurring flows, and deliver data to downstream systems.

Zoho DataPrepとは?

Zoho DataPrep is a cloud-based data preparation and pipeline platform that combines ETL, data cleaning, enrichment, movement, and monitoring in one workspace. It is designed to help teams take raw data from business applications, APIs, files, databases, cloud storage, and warehouses; prepare it for analysis or operations; and deliver it to downstream destinations.

The platform uses a visual, no-code pipeline builder and includes more than 250 built-in transforms. Users can also ask Zia to perform preparation tasks through natural-language prompts. Scheduled workflows, sandbox testing, monitoring dashboards, failure alerts, and automated retries support recurring data operations. A separate browser-based Data Quality Analyser checks CSV files locally and produces quality reports before data is used downstream.

Zoho DataPrepでできること

Visual ETL and reverse ETL pipelines

Build source-to-destination data flows with a no-code visual pipeline builder. DataPrep can import from business applications, REST APIs, cloud storage, databases, and data warehouses, then export prepared data to warehouses, storage, and business applications.

No-code data preparation

Use a spreadsheet-like preparation workspace with more than 250 built-in transforms to clean, standardize, reshape, blend, and enrich datasets without writing scripts.

Natural-language preparation with Ask Zia

Ask Zia, Zoho's in-house AI engine, can help clean and transform data from prompts in natural language. OpenAI integration can provide additional datasets and assist with complex formulas.

Data enrichment and analysis transforms

Combine datasets and apply enrichment operations, including machine-learning-powered sentiment analysis and keyword extraction for user-generated content.

Scheduled automation and testing

Schedule recurring data movement and preparation workflows. A sandbox environment lets teams test a pipeline before publishing it to production.

Pipeline monitoring and collaboration

Track pipeline status from a dashboard, receive email alerts for failed jobs, and use automated retries to improve run resilience. Workspaces and pipelines can be shared with team members.

利用シーン

“Prepare data for analysis”

Data analysts can combine datasets, correct invalid values, standardize fields, and reshape messy source data into datasets that are ready for reporting or analytics.

“Automate business-system data flows”

Business teams can move data between applications, storage, databases, and warehouses on a schedule instead of repeating manual exports, imports, and cleanup.

“Enrich customer or text data”

Teams working with feedback or other user-generated content can apply sentiment analysis and keyword extraction, then combine the results with other datasets.

“Manage production pipelines”

Data engineers can test flows in a sandbox, schedule recurring jobs, monitor run status, receive failure alerts, and use retries or backfilling processes when jobs do not complete.

“Support machine-learning workloads”

Data scientists can prepare larger datasets with no-code AI capabilities or use the Python code studio for analytics and model-related work.

よくある質問

Who is Zoho DataPrep designed for?

The product describes use cases for data analysts, business users, data engineers, and data scientists. Analysts and business users can work through the no-code interface, while engineers and data scientists can manage pipelines and use the Python code studio.

Can DataPrep automate recurring data workflows?

Yes. Users can schedule data movement and preparation workflows, monitor pipeline status, receive email alerts for failed jobs, and use automated retries to improve run reliability.

Does DataPrep require coding?

Many preparation and pipeline tasks can be completed through the no-code visual interface and Ask Zia's natural-language prompts. The site also describes a Python code studio for users who need code-based data-science workflows.

What does the separate Data Quality Analyser accept?

The analyzer currently accepts CSV files with headers in the first row. It recommends files around 20 MB, automatically detects column types such as text, number, date, email, and boolean, and lets users adjust those types before analysis.

Can quality-analysis results be exported?

Yes. The Data Quality Analyser can export a printable PDF report or a structured JSON file containing issues and per-column statistics. Its analysis runs locally in the browser, so the uploaded file is not sent to a server.

クイック情報

Product category
ETL, data preparation, reverse ETL, and data pipeline monitoring
Deployment model
Cloud-based platform
Preparation interface
No-code visual pipeline builder and spreadsheet-like workspace
Built-in transforms
250+ transforms stated on the product page
AI capabilities
Ask Zia natural-language preparation, machine-learning-powered enrichment, and OpenAI integration
Separate quality tool
Browser-based CSV analyzer with PDF and JSON export

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