Zendesk Chat → Domo
AI-first ETL from Zendesk Chat into Domo. Governed entities, incremental sync, typed landing tables.
How Datrise loads Zendesk Chat into Domo
Datrise syncs Zendesk Chat's chats, agents, visitors, departments, and response times into Domo as datasets in Domo's cloud store via connector. Flexible or custom fields land in flattened columns for Magic ETL, and timestamps such as created, updated, and status changes are typed as date/time columns.
Sync is incremental: Datrise uses partitioned dataset updates rather than full replaces, so re-runs update only what changed. Domo dataset partitions keyed on load date. Domo stores its own copy of data, so Datrise sends incremental partitions to avoid re-uploading whole datasets.
Ideal for all-in-one cloud BI with built-in ETL.
Endpoints
Zendesk Chat: Live chat conversations and agent performance.
Domo: Cloud BI platform combining data integration and executive dashboards.
How Zendesk Chat entities map to Domo
| Zendesk Chat entity | Domo object | Notes |
|---|---|---|
| chats | zendesk_chat_chats | id PK · custom fields → flattened columns for Magic ETL |
| agents | zendesk_chat_agents | id PK · linked to zendesk_chat_chats |
| visitors | zendesk_chat_visitors | id PK · linked to zendesk_chat_chats |
| departments | zendesk_chat_departments | id PK · linked to zendesk_chat_chats |
FAQ
How does Datrise handle Zendesk Chat's custom fields in Domo?
Flexible values are stored as flattened columns for Magic ETL, so new fields don't require a migration; strongly-typed fields — dates, numbers, and references — are promoted to native Domo types.
How does the Zendesk Chat to Domo sync stay up to date?
It runs incrementally — Datrise uses partitioned dataset updates rather than full replaces.
Related pipelines
More destinations for Zendesk Chat
Early access
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