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maskflow-cli

Command-line interface for MaskFlow:

maskflow config validate
maskflow config show --resolved
maskflow doctor
maskflow explain "<text>"
maskflow scan jsonl requests.jsonl --field 'messages[].content'

maskflow doctor checks installed versions, spaCy model presence (and which entities that consequently disables), and .maskflowrc validity, then reports enabled/disabled status for every registered entity. It exits 0 only when every check passes.

maskflow explain "<text>" shows, span by span, why each piece of text was (or wasn't) detected as PII -- the pattern/NER hit, checksum result, context boost, and the threshold decision behind it. Spans that scored below their entity's threshold are listed separately as NEAREST MISSES, with the .maskflowrc change that would catch them. Matched text is truncated to 8 characters unless --full is passed. Accepts the same --config/--set overrides as maskflow config, so explanations reflect the same resolved config a real mask() call would use.

maskflow scan -- what PII already reached your LLM providers

maskflow scan SOURCE ... answers the question a DPDP-deadline audit asks first: what PII has this system already sent to third-party LLM providers, and how bad is it? It reads your historical LLM traffic, runs MaskFlow's own detection over it, and writes one self-contained HTML report -- inline CSS/JS, zero external requests, so it prints cleanly and can be emailed to an auditor as-is.

Features

  • Eight source adapters, one interface: jsonl / ndjson (with --field selectors), csv (--columns), dir (recursive), s3 (streamed), postgres (server-side cursor), and the langfuse / helicone / langsmith REST APIs. s3 and postgres need the maskflow-cli[s3] / [postgres] extras; the rest need nothing extra.
  • Streaming, bounded memory -- inputs can be gigabytes. --workers N parallelises detection; --checkpoint FILE makes a run resumable; --sample N is a fast first pass.
  • Hybrid detection. The pattern/checksum pass (Aadhaar, PAN, GSTIN, UPI, IFSC, cards, email, ...) covers the whole corpus. The NER pass (bare names & addresses) runs on a sample and is reported as a clearly labelled estimate -- pass --deep to run it over everything.
  • The report: one headline number, breakdowns by entity type / provider / model / time, a severity ranking with a plain-English "why this matters" per row, masked excerpts only (values shown as <AADHAAR_1>, never raw), and a DPDP Rule 6 mapping appendix. Also --format json|csv.
  • Runs entirely locally. Nothing is transmitted. The API sources only read from your own observability account.

Try it -- a synthetic 60-record sample ships in examples/:

uv run maskflow scan jsonl packages/maskflow-cli/examples/sample-llm-traffic.jsonl \
  --field 'messages[].content' \
  --provider-field provider --service-field model --timestamp-field created_at \
  --deep --out exposure-report.html

Notes: uv run runs the CLI from the workspace venv -- drop it if maskflow-cli is on your PATH (pipx install maskflow-cli). Quote the --field value: messages[].content contains [], which the shell would otherwise try to expand.

Install it -- four ways, see packaging/ and docs/scan.md:

NER (names/addresses/DOB)
pipx install maskflow-cli + python -m spacy download en_core_web_sm yes
docker run --rm -v "$PWD:/work" ghcr.io/maskflow/cli scan ... yes, baked in
standalone binary (GitHub Releases, no Python) no -- pattern pass only
maskflow/scan-action for CI yes

Then open exposure-report.html. See examples/README.md for a walk-through of the output, and docs/scan.md for the full reference.

See docs/configuration.md in the repo root for the full config reference.

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