Hi all,
With AIP-85, I've been working on a YAML Dag format, and would like some
feedback on it. Shortest possible taste first:
compatibility_date: "2026-10-30"
dag_id: daily_sales
schedule: "@daily"
tasks:
# A classical task using an operator.
# There's no automatic template detection; {{ ds }} not wrapped in $t is
a literal.
- id: extract
uses:
airflow.providers.amazon.aws.transfers.s3_to_redshift.S3ToRedshiftOperator
with:
s3_bucket: retail-raw
s3_key: {$t: "sales/{{ ds }}.csv"}
schema: public
table: sales
# A taskflow-style task.
# Things inside run: are arguments to the function.
# $x means an XCom input.
- id: notify
run:
channel: "#data"
rows: {$x: extract}
## Why a new format
DagFactory is the direct inspiration and the feature-parity bar; longer term
we'd like this to be the path that supersedes it.
The reason to start fresh rather than extending is that DagFactory is
essentially Python transcribed into YAML; import paths, callables named by
file+function, a default_args block shaped like a DAG() call. With recent
AIP-108 (language SDKs), YAML can provide a more neutral foundation for
declaring the dependency structure of tasks implemented in ANY language. We
also want to better represent Airflow constructs such as XCom and assets.
== Design guidelines and decisions ==
- Language-neutral, not "Python in YAML". JSON is the data model, YAML just a
skin: everything round-trips to JSON.
- Literal by default; templating is opt-in with {$t: ...} (inspired by AIP-80).
This removes the implicit-Jinja surprises. Also, {$f: ...} is an explicit file
template, removing the classic `cat {{ ds }}.sh` -> TemplateNotFound foot-gun.
(There's also a $const to mark something as literal explicitly.)
- No default_args. Reusable `templates:` composed per task via `extends:`, and
the merged task is validated against the real operator. An unaccepted argument
is a parse error, not a silent drop.
- uses: a fully-qualified operator import path. run: the single code primitive
for any language (Python/Go/Java written identically).
- compatibility_date (borrowed from Cloudflare Workers) pins the format
semantics, so old files keep their meaning as the format evolves.
- It ships as an AIP-85 importer in the Task SDK, natively recognized by
Airflow (enabled by a configuration).
== Deliberately left out of v1 (all additive, can land later) ==
- Task groups, dynamic task mapping, branching; AIP-104/111/113 (batching,
loops, dynamic task groups).
- Assets / data-aware scheduling (inlets/outlets, asset expressions, watchers).
- Callbacks. They name a callable, so they wait on a declarative
callable-reference grammar.
- Python run: execution. The format is settled; the @task_handler runtime that
runs it is a separate work (Go/Java run: tasks already execute).
- Operator shorthand (e.g. amazon.S3ToRedshiftOperator) and cross-file shared
config.
I've also created a draft PR that implements the parser. (Not the full AIP-85
importer yet.)
https://github.com/apache/airflow/pull/74084
Thanks,
TP
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