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WalleDAO
@WalleDAO
Onchain Capital & Protocol Analyst | Independent contributor to @sparkfinance | 10Y in data, previously Staff-level in Big Tech
参加 January 2025
117 フォロー中    285 ファン
The @Dune dbt migration is done. 287 models. 42 dashboards. All hourly. 🧵 Over the past several weeks — entirely outside my regular work hours — I migrated all 287 dbt models powering @sparkfinance's analytics infrastructure on @dune. 42 dashboards. All refreshing hourly. Production-grade. Done. ➢ What this means for Spark @sparkfinance is one of the most data-driven protocol teams I've worked with. Data here directly informs protocol decisions — numbers need to be right before they're trusted, not after. Over the past year I built 42 @Dune dashboards for @sparkfinance from scratch — covering P&L, user behavior, and protocol-level analytics. The migration made all of that durable, maintainable, and accessible to the whole team — not just to me. ➢ What changed Before: ~100K credits/month. Daily refresh. Logic living in my head. After: Hourly refresh. Incremental models. Full dependency resolution. Every model QA'd against its legacy query before cutover. And one net-new capability: EOH (end-of-hour) snapshots powering Time-Weighted Average P&L — capturing intraday rate spikes that daily snapshots miss entirely. Not possible before. ➢ What made it possible @cursor_ai+ @claudeai + @Dune MCP + a living SOP. By the end: SOP v2.43. 31 dated incidents. Each one root-caused, traced to a specific query, documented, and encoded as a permanent guardrail before moving on. No incident was closed until the root cause was understood. Not the symptom — the cause. That patience is the only reason the pipeline is stable now. Bug → rule → Cursor keeps it in Claude's context → fewer bugs per model. The document became the system's memory. ➢ Why Dune made this possible None of this works without @dune's dbt + Trino stack. Hourly incremental jobs on complex DeFi financials — per-user balances, multi-chain borrow rates, supply indices — at sustainable cost. That's not a given. Thanks to @kdotkrisp @onchain_ben @fr0zensun for the technical support throughout. 🙏 All data logic is now version-controlled in Git. Dune MCP closes the loop — AI can understand not just how the data is built, but how it's consumed in dashboards. The goal was never to be the person who knows everything. It was to build a system that doesn't depend on any one person knowing anything. That's what makes this valuable — the knowledge is in the system now, not in my head. Queryable by anyone on the team, or by AI directly. 287 models. Done. 🚀
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