Google Ads Api Account Diagnostics

by google55b4e13eba6dNo licenseListed Oct 8, 2026Updated Oct 8, 2026

Diagnoses Google Ads account performance issues such as conversion loss (value or volume), low lead flow/volume, and lost impression share (opportunities) due to ad rank, bids, or budgets. Use when troubleshooting sudden performance drops, analyzing campaign impression share metrics, investigating low lead flow, or searching for bidding and budget constraints. Don't use for setting up new campaigns, uploading conversion events directly, or general Google Mobile Ads SDK integration issues (use gma-android-integrate instead).

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AI-generated overview

Diagnoses Google Ads account performance drops using Google Ads MCP server GAQL queries.

What it does
This skill gives step-by-step instructions for diagnosing Google Ads account performance problems through Google Ads MCP server tools. It covers conversion and conversion value loss, lost impression share from ad rank, bids, or budgets, low lead flow, and offline conversion upload pipeline health. It produces GAQL queries and analysis guidance, including how to find accessible client accounts and interpret metrics such as cost_micros and impression share.
When to use it
Use it when troubleshooting sudden Google Ads performance drops, such as falling conversions or conversion value, low lead volume, or lost impression share. It is also meant for investigating bidding and budget constraints and checking offline conversion upload health. It is not for setting up new campaigns, uploading conversion events directly, or Google Mobile Ads SDK integration issues.
Requirements
Requires access to a Google Ads MCP server exposing tools such as search, get_resource_metadata, and list_accessible_customers, plus authenticated access to Google Ads customer accounts. It ships no scripts and is instructions only; it explicitly says not to write or run custom Python scripts or use the Google Ads client library.

Google Ads API Account Performance Diagnostics Skill

This skill provides instructions on how to use the Google Ads MCP server tools to diagnose common account performance issues.

Workflows

Identifying Active Client Accounts

Most diagnostics tasks require sending GAQL queries to a specific customer account. If the customer ID is not explicitly provided by the user, you must first call the list_accessible_customers (or customers_list_accessible_customers) tool to retrieve the customer resource names/IDs you have access to.

Once you have the list of accessible customer IDs, query the customer_client resource using the search tool under those customer accounts to find active client customer accounts. Make sure to select only enabled client accounts and filter out manager accounts:

sql
SELECT  customer_client.id,  customer_client.descriptive_name,  customer_client.status,  customer_client.managerFROM customer_clientWHERE customer_client.status = 'ENABLED' AND customer_client.manager = FALSE

Only run subsequent diagnostic queries against the enabled client customer IDs retrieved from this list. Do not query deactivated or manager accounts, as doing so will cause API errors.

Using the MCP Tools Directly

To retrieve information and run queries, you must call the search tool on the MCP server directly (with arguments like customer_id, fields, resource, and conditions). Do not write or execute custom Python scripts or use the Google Ads client library to query the API, as they will fail authentication inside the evaluation sandbox.

1. Conversion and Conversion Value Loss

When conversions or conversion value suddenly decline, use the following steps to diagnose the issue.

Steps:

  1. Discover Fields: Use get_resource_metadata with resource campaign or ad_group to ensure you have the correct field names.

  2. Query Performance: Use search to retrieve performance data.

    • Resource: campaign or ad_group
    • Fields: Include campaign.name, metrics.conversions, metrics.conversions_value, metrics.cost_micros.
    • Segments: To isolate the loss, include segments like segments.date, segments.device, segments.conversion_action.
    • Conditions: Compare the period of decline with a previous period (e.g., segments.date >= '{start_date}').
    • Gotcha: metrics.cost_micros must be divided by 1,000,000 to get standard currency amounts.

    Example GAQL Query: To query performance data for a customer account {customer_id} between {start_date} and {end_date}:

    sql
    SELECT  campaign.name,  metrics.conversions,  metrics.conversions_value,  metrics.cost_micros,  segments.date,  segments.device,  segments.conversion_actionFROM campaignWHERE segments.date >= '{start_date}' AND segments.date <= '{end_date}'
  3. Analyze: Check if the loss is limited to certain devices (e.g., mobile vs desktop) or specific conversion actions.

  4. Check Uploads: If using offline imports, query offline_conversion_upload_conversion_action_summary to verify upload pipeline health. If the query returns no results, report that no offline uploads exist for the account and proceed.

    Example GAQL Query: To check upload pipeline health for a customer account {customer_id}:

    sql
    SELECT  offline_conversion_upload_conversion_action_summary.conversion_action_name,  offline_conversion_upload_conversion_action_summary.successful_event_count,  offline_conversion_upload_conversion_action_summary.total_event_count,  offline_conversion_upload_conversion_action_summary.statusFROM offline_conversion_upload_conversion_action_summary

2. Opportunities Lost (Impression Share)

To identify lost opportunities due to ad rank, bids, or budgets, analyze impression share metrics.

Steps:

  1. Query Impression Share: Use search to retrieve impression share metrics.

    • Resource: campaign
    • Fields: Include campaign.name, metrics.search_impression_share, metrics.search_rank_lost_impression_share, metrics.search_budget_lost_impression_share.
    • Gotcha: Impression share values in the API are returned as decimals (e.g., 0.35 = 35%) or formatted strings (e.g., "< 0.10").

    Example GAQL Query: To query impression share metrics for a customer account {customer_id} between {start_date} and {end_date}:

    sql
    SELECT  campaign.name,  metrics.search_impression_share,  metrics.search_rank_lost_impression_share,  metrics.search_budget_lost_impression_shareFROM campaignWHERE segments.date >= '{start_date}' AND segments.date <= '{end_date}'
  2. Analyze:

    • High search_budget_lost_impression_share indicates opportunities lost due to limited budget.
    • High search_rank_lost_impression_share indicates opportunities lost due to low ad rank (bid or quality issues).

3. Low Lead Flow Diagnostics

When a user asks "why is my lead flow low these past few days?", follow this systematic approach.

Steps:

  1. Confirm Drop: Query conversions segmented by date for the last few days vs the previous period.

  2. Isolate Cause:

    • Check if Traffic (clicks, impressions) dropped.
    • Check if Conversion Rate (conversions/clicks) dropped.
  3. If Traffic Dropped: Check Impression Share metrics (see Workflow 2) to see if it's a budget or rank issue, or if search volume generally declined.

  4. If Conversion Rate Dropped: Check breakdowns by segments.device or segments.conversion_action to see if a specific area is failing.

  5. Check Changes: Query the change_event resource to see if any changes were made to bids, budgets, or targeting around the time the drop started.

    • Gotcha (change_event constraints): Queries to the change_event resource:
      • Must specify a LIMIT clause of less than or equal to 10000.
      • Must filter by date (change_event.change_date_time) within the past 30 days.
      • Cannot select performance metrics (e.g., metrics.* is not supported; only change_event attributes and allowed resource fields can be selected).

    Example GAQL Query: To query change events for a customer account {customer_id} between {start_date} and {end_date}:

    sql
    SELECT  change_event.change_date_time,  change_event.change_resource_name,  change_event.resource_change_operation,  change_event.changed_fieldsFROM change_eventWHERE change_event.change_date_time >= '{start_date}' AND change_event.change_date_time <= '{end_date}'LIMIT 10000

4. Offline Upload Pipeline Diagnostics

When offline conversion uploads for a specific action (e.g., store-purchase) stop showing up or fail, use the following steps to diagnose the issue.

Steps:

  1. Retrieve Client Accounts: If {customer_id} is not provided, first call the list_accessible_customers (or customers_list_accessible_customers) tool to retrieve the customer resource names/IDs you have access to. Then, query the customer_client resource to find active client customer accounts, ensuring you filter out manager accounts and deactivated/canceled accounts to avoid query errors.

    Example GAQL Query:

    sql
    SELECT  customer_client.id,  customer_client.descriptive_name,  customer_client.status,  customer_client.managerFROM customer_clientWHERE customer_client.status = 'ENABLED' AND customer_client.manager = FALSE
  2. Verify Pipeline Health: Query offline_conversion_upload_conversion_action_summary for the active client account.

    • Fields: Include offline_conversion_upload_conversion_action_summary.conversion_action_name, offline_conversion_upload_conversion_action_summary.successful_event_count, offline_conversion_upload_conversion_action_summary.total_event_count, and offline_conversion_upload_conversion_action_summary.status.

    Example GAQL Query:

    sql
    SELECT  offline_conversion_upload_conversion_action_summary.conversion_action_name,  offline_conversion_upload_conversion_action_summary.successful_event_count,  offline_conversion_upload_conversion_action_summary.total_event_count,  offline_conversion_upload_conversion_action_summary.statusFROM offline_conversion_upload_conversion_action_summary
  3. Analyze:

    • Gotcha: If the query to offline_conversion_upload_conversion_action_summary returns no results or is empty (indicating there are no offline conversion uploads configured or active for the customer account), immediately stop/break the diagnostic workflow. Report directly to the user that no offline conversion upload data or summaries exist in the accessible account(s), rather than retrying or attempting to generate custom scripts.
    • If results are returned, verify the upload success rate by comparing successful_event_count with total_event_count. Check the status field to diagnose failures.

Source and attribution

Source:google/skillsinskills/ads/google-ads-api-account-diagnosticsat commit55b4e13

License: No license

Content belongs to its original authors. SourceWeft indexes it from a public repository.

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