Google Ads and Google Cloud BigQuery (REST) Integration

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Analyze Google Ads spend in detail by loading data into Google Cloud BigQuery (REST). Latenode's visual editor makes custom transformations easy, plus you only pay for execution time, not operations.

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Google Ads

Google Cloud BigQuery (REST)

Step 1: Choose a Trigger

Step 2: Choose an Action

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How to connect Google Ads and Google Cloud BigQuery (REST)

Create a New Scenario to Connect Google Ads and Google Cloud BigQuery (REST)

In the workspace, click the “Create New Scenario” button.

Add the First Step

Add the first node – a trigger that will initiate the scenario when it receives the required event. Triggers can be scheduled, called by a Google Ads, triggered by another scenario, or executed manually (for testing purposes). In most cases, Google Ads or Google Cloud BigQuery (REST) will be your first step. To do this, click "Choose an app," find Google Ads or Google Cloud BigQuery (REST), and select the appropriate trigger to start the scenario.

Add the Google Ads Node

Select the Google Ads node from the app selection panel on the right.

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Configure the Google Ads

Click on the Google Ads node to configure it. You can modify the Google Ads URL and choose between DEV and PROD versions. You can also copy it for use in further automations.

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Run node once

Add the Google Cloud BigQuery (REST) Node

Next, click the plus (+) icon on the Google Ads node, select Google Cloud BigQuery (REST) from the list of available apps, and choose the action you need from the list of nodes within Google Cloud BigQuery (REST).

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Authenticate Google Cloud BigQuery (REST)

Now, click the Google Cloud BigQuery (REST) node and select the connection option. This can be an OAuth2 connection or an API key, which you can obtain in your Google Cloud BigQuery (REST) settings. Authentication allows you to use Google Cloud BigQuery (REST) through Latenode.

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Configure the Google Ads and Google Cloud BigQuery (REST) Nodes

Next, configure the nodes by filling in the required parameters according to your logic. Fields marked with a red asterisk (*) are mandatory.

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Google Cloud BigQuery (REST) Oauth 2.0

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Run node once

Set Up the Google Ads and Google Cloud BigQuery (REST) Integration

Use various Latenode nodes to transform data and enhance your integration:

  • Branching: Create multiple branches within the scenario to handle complex logic.
  • Merging: Combine different node branches into one, passing data through it.
  • Plug n Play Nodes: Use nodes that don’t require account credentials.
  • Ask AI: Use the GPT-powered option to add AI capabilities to any node.
  • Wait: Set waiting times, either for intervals or until specific dates.
  • Sub-scenarios (Nodules): Create sub-scenarios that are encapsulated in a single node.
  • Iteration: Process arrays of data when needed.
  • Code: Write custom code or ask our AI assistant to do it for you.
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Save and Activate the Scenario

After configuring Google Ads, Google Cloud BigQuery (REST), and any additional nodes, don’t forget to save the scenario and click "Deploy." Activating the scenario ensures it will run automatically whenever the trigger node receives input or a condition is met. By default, all newly created scenarios are deactivated.

Test the Scenario

Run the scenario by clicking “Run once” and triggering an event to check if the Google Ads and Google Cloud BigQuery (REST) integration works as expected. Depending on your setup, data should flow between Google Ads and Google Cloud BigQuery (REST) (or vice versa). Easily troubleshoot the scenario by reviewing the execution history to identify and fix any issues.

Most powerful ways to connect Google Ads and Google Cloud BigQuery (REST)

Google Ads + Google Cloud BigQuery (REST) + Google Sheets: Analyze Google Ads campaign performance data in BigQuery using a query. Then, update a Google Sheet with the results for easy ROI tracking and visualization.

Google Cloud BigQuery (REST) + Google Ads + Slack: Detect anomalies in Google Ads data stored in BigQuery by running a scheduled query. If anomalies are found based on the query results, send an alert to the marketing team via Slack.

Google Ads and Google Cloud BigQuery (REST) integration alternatives

About Google Ads

Use Google Ads in Latenode to automate campaign management and reporting. Pull ad performance data, adjust bids based on real-time events, or trigger alerts for budget changes. Combine with other apps to build custom marketing workflows. Latenode's flexibility avoids rigid, pre-built integrations and costly per-step pricing.

About Google Cloud BigQuery (REST)

Automate BigQuery data workflows in Latenode. Query and analyze massive datasets directly within your automation scenarios, bypassing manual SQL. Schedule queries, transform results with JavaScript, and pipe data to other apps. Scale your data processing without complex coding or expensive per-operation fees. Perfect for reporting, analytics, and data warehousing automation.

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FAQ Google Ads and Google Cloud BigQuery (REST)

How can I connect my Google Ads account to Google Cloud BigQuery (REST) using Latenode?

To connect your Google Ads account to Google Cloud BigQuery (REST) on Latenode, follow these steps:

  • Sign in to your Latenode account.
  • Navigate to the integrations section.
  • Select Google Ads and click on "Connect".
  • Authenticate your Google Ads and Google Cloud BigQuery (REST) accounts by providing the necessary permissions.
  • Once connected, you can create workflows using both apps.

Can I automate bid adjustments based on BigQuery data?

Yes, you can! Latenode's visual editor makes this simple. Automatically adjust bids based on real-time insights for optimized ad spend and improved ROI.

What types of tasks can I perform by integrating Google Ads with Google Cloud BigQuery (REST)?

Integrating Google Ads with Google Cloud BigQuery (REST) allows you to perform various tasks, including:

  • Importing Google Ads performance data into BigQuery for analysis.
  • Automating custom report generation using combined datasets.
  • Creating audience segments in Google Ads using BigQuery insights.
  • Triggering campaign adjustments based on BigQuery data thresholds.
  • Analyzing ad spend efficiency using enhanced data visualizations.

How do I handle large Google Ads datasets efficiently in Latenode?

Latenode's architecture handles large datasets easily. Process data chunks or use JavaScript for advanced transformations before loading.

Are there any limitations to the Google Ads and Google Cloud BigQuery (REST) integration on Latenode?

While the integration is powerful, there are certain limitations to be aware of:

  • Initial data loading from Google Ads to BigQuery might take time.
  • Complex data transformations may require custom JavaScript code.
  • API rate limits of both Google Ads and BigQuery apply.

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