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Load Kombu data to DuckDB

Build a Kombu to DuckDB pipeline with your coding agent. One prompt scaffolds it with the dltHub AI harness, plus the Kombu API base URL, auth, endpoints, and incremental loading.

SourceKombuKombu API DocumentationDestinationDuckDBIn-process analytical database. The default local destination for dlt pipelines.

Kombu is a messaging library for Python that provides a unified interface for various message brokers like RabbitMQ and Redis. Everything needed to build a working Kombu → DuckDB pipeline is on this page: the API's base URL, authentication, endpoints, pagination and incremental field — plus a prompt that hands the whole job to your coding agent.


Build your Kombu to DuckDB pipeline

Paste this prompt into Claude, Codex, or Cursor. The agent does the rest.

Prompt
Run uvx dlthub-init@latest to build a pipeline from Kombu to DuckDB and run it on dltHub

That scaffolds a dltHub workspace and installs the dltHub AI harness — the project rules, the secrets-management skill, and the dlt MCP server your agent needs to work safely. From there it reads the Kombu API, proposes the endpoints to load, then writes, runs and validates the pipeline while you review rather than type. Credentials are inspected through MCP tools, so your agent never reads secrets.toml itself. How the LLM-native workflow works →

Prefer to write it yourself? Every fact the agent uses is below.


Kombu API at a glance

Base URLN/A - Kombu is a Python client library and does not expose a REST HTTP base URL
Example endpointGET N/A
AuthenticationNo HTTP authentication required; credentials are embedded in the broker connection URL — sent in the Authorization header, prefixed Bearer
Also requiredX-Integration-Id
PaginationCursor-based via cursor, next cursor at next, page size via page_size (default 100, max 100). The response returns a cursor in a next field (or null). Use the cursor query parameter to request the next page, and include the same filters while paginating.
API referencehttps://docs.kombo.dev/lms/getting-started/authentication

These values come from the Kombu API reference — the authoritative source if anything here looks out of date.


How do I authenticate with the Kombu API?

Kombu does not use HTTP authentication. It connects to message brokers using connection strings that include credentials (e.g., amqp://user:password@host:port/vhost).

1. Get your credentials

Kombu is a Python messaging library, not a REST API. It does not provide a dashboard for generating API keys. To connect, you must use a message broker (e.g., RabbitMQ, Redis, Amazon SQS). Obtain your credentials (username, password, host, port, vhost) directly from your broker's management UI or configuration console.

2. Add them to .dlt/secrets.toml

[sources.kombu_source] connection_url = "amqp://username:password@broker-host:5672/vhost"

dlt reads this file automatically at runtime. With the harness, the setup-secrets skill prompts you for the values and never handles the raw credential in chat. For production, see setting up credentials with dlt.


What Kombu data can I load into DuckDB?

These are the Kombu endpoints dlt can load into DuckDB:

ResourceEndpointMethodData selectorDescription
N/AN/AN/AN/AKombu is a Python messaging library, not a REST API.
N/AN/AN/AN/ANo endpoints exist for pagination, cursors, or incremental loading.
N/AN/AN/AN/ANo REST API endpoints are available.
N/AN/AN/AN/ANo REST API endpoints are available.
N/AN/AN/AN/ANo REST API endpoints are available.

How do I load only new Kombu records?

The Kombu API reference does not document a timestamp or sequence field for these endpoints, so there is nothing to advertise here as verified. Pick a field from the endpoints table above that increases with every write, then set it as the cursor_path.

{"name": "kombu_none_available", "endpoint": { "path": "N/A", # Replace with a field that increases on every write. "incremental": {"cursor_path": "REPLACE_ME", "initial_value": "2024-01-01T00:00:00Z"}, }}

On the first run dlt loads everything from initial_value; on every run after that it requests only what changed and appends with write_disposition="merge" if you set a primary key. See incremental loading.


What does the generated Kombu pipeline look like?

A standard dlt REST API pipeline — the same code you would write by hand, loading 'None' and 'None' (Kombu does not expose REST endpoints) from the Kombu API into DuckDB:

import dlt from dlt.sources.rest_api import RESTAPIConfig, rest_api_resources @dlt.source def kombu_source(connection_url=dlt.secrets.value): config: RESTAPIConfig = { "client": { "base_url": "N/A - Kombu is a Python client library and does not expose a REST HTTP base URL", "auth": {"type": "bearer", "token": connection_url}, }, "resources": [ {"name": "kombu_none_available", "endpoint": {"path": "N/A"}} ], } yield from rest_api_resources(config) def load_kombu_to_duckdb() -> None: pipeline = dlt.pipeline( pipeline_name="kombu_pipeline", destination="duckdb", dataset_name="kombu_data", ) load_info = pipeline.run(kombu_source()) print(load_info) if __name__ == "__main__": load_kombu_to_duckdb()

Run it with python kombu_pipeline.py. The agent iterates on this until it loads cleanly — you review and approve, rather than write it from scratch.


How do I query Kombu data in DuckDB?

dlt creates one table per resource. Query the loaded data with Python or SQL — or ask your agent to, through the MCP server's execute_sql_query tool.

Python (pandas DataFrame):

import dlt data = dlt.pipeline("kombu_pipeline").dataset() df = data.none.df() print(df.head())

SQL:

SELECT * FROM kombu_data.none LIMIT 10;

See querying your data with dataset and exploring it in marimo notebooks.


How do I deploy the Kombu to DuckDB pipeline in production?

The pipeline runs locally, which is ideal for prototyping and one-off analysis. When you need it on a schedule, monitored on every load, and shared with your team, deploy the same dlt code on the dltHub platform — no infrastructure to maintain. The prompt above already ends with "run it on dltHub", so your agent can take it there directly.

  • Deploy & schedule — run the pipeline as a managed job with automatic retries.
  • Monitor — observable job queues, alerting, and load metrics for every run.
  • Transform — promote raw Kombu loads into governed, documented models.
  • Visualize & share — explore data in notebooks and publish live dashboards instead of static screenshots.

Book a demo →


What other destinations can I load Kombu data to?

dlt loads into any of these — only the destination argument changes:

DestinationExample value
PostgreSQL"postgres"
BigQuery"bigquery"
Snowflake"snowflake"
Redshift"redshift"
Databricks"databricks"
Filesystem (S3, GCS, Azure)"filesystem"

Set dlt.pipeline(destination="snowflake") and add credentials in .dlt/secrets.toml. On the dltHub platform the same pipeline runs against a managed Iceberg lakehouse. See the full destinations list.


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