Agent SkillsNeverSight/learn-skills.dev › data-throughput-accelerator

data-throughput-accelerator

GitHub

加速大数据摄入、回填、导出及ETL流程,在确保数据正确性的前提下提升吞吐量。通过分离瓶颈、应用优化启发式规则、标准化工作流及严格会计审计,实现快速且可验证的数据同步与加载。

data/skills-md/affaan-m/everything-claude-code/data-throughput-accelerator/SKILL.md NeverSight/learn-skills.dev

Trigger Scenarios

大规模数据摄入或回填需求 ETL或仓库加载性能瓶颈 表同步或清单追赶任务

Install

npx skills add NeverSight/learn-skills.dev --skill data-throughput-accelerator -g -y
More Options

Non-standard path

npx skills add https://github.com/NeverSight/learn-skills.dev/tree/main/data/skills-md/affaan-m/everything-claude-code/data-throughput-accelerator -g -y

Use without installing

npx skills use NeverSight/learn-skills.dev@data-throughput-accelerator

指定 Agent (Claude Code)

npx skills add NeverSight/learn-skills.dev --skill data-throughput-accelerator -a claude-code -g -y

安装 repo 全部 skill

npx skills add NeverSight/learn-skills.dev --all -g -y

预览 repo 内 skill

npx skills add NeverSight/learn-skills.dev --list

SKILL.md

Frontmatter
{
    "name": "data-throughput-accelerator",
    "tools": "Read, Write, Edit, Bash, Grep, Glob",
    "origin": "ECC",
    "description": "Use when large data ingestion, backfill, export, ETL, warehouse loading, manifest catch-up, or table synchronization needs to become much faster while preserving data correctness."
}

Data Throughput Accelerator

Use this skill when the bottleneck is moving, transforming, or saving lots of data. The goal is not just speed. The goal is faster correct data landing in the right place with proof.

First Distinction

Separate these before optimizing:

  • source extraction speed;
  • network transfer speed;
  • warehouse/load speed;
  • transform speed;
  • serving-table freshness;
  • live tail growth while the job runs.

A pipeline can be "fast" and still appear behind if new data arrives faster than the final catch-up window.

Fast Path Heuristics

  • Move compute to where the data already is.
  • Prefer warehouse-native scans, joins, and appends for large landed files.
  • Use manifests or checkpoints so completed files/partitions are skipped.
  • Use partitioning and clustering that match the read and append pattern.
  • Batch small files, requests, and writes.
  • Make writes idempotent through unique keys, manifests, or replaceable staging.
  • Keep raw, derived, and serving tables separately accountable.

Workflow

  1. Read the current source, target, and manifest contracts.
  2. Measure backlog: external files, manifest rows, raw rows, derived rows, min/max timestamps, and unprocessed counts.
  3. Run a safe catch-up or sample benchmark.
  4. Compare variants: batch size, worker count, warehouse SQL, file grouping, staging shape, and manifest update method.
  5. Promote only the fastest path that keeps counts and timestamps coherent.
  6. Codify the path as a CLI, scheduled job, workflow, or runbook.
  7. Rerun final accounting after the codified path executes.

Accounting Output

Use a hard accounting block:

Data throughput result:
- Source files discovered: 294
- Files processed this run: 294
- Raw rows added: 9,683,598
- Derived rows added: 8,917,585
- Remaining tail: 24 files at readback time
- Runtime: 38.7s
- Correctness gate: manifest counts and table max timestamps match

Guardrails

  • Do not delete raw data to make a metric look better.
  • Do not skip failed files silently.
  • Do not mix historical backfill status with live-tail freshness.
  • Do not call a pipeline complete until the target tables and manifest agree.
  • For finance, healthcare, regulated, or customer-impacting data, preserve replay evidence and approval gates.

Version History

  • e0220ca Current 2026-07-05 23:53

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Version
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Indexed
2026-07-05 23:53

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