Everyone's chasing the biggest, most powerful model on the market. But here's the hard truth nobody wants to admit:
You can't guarantee zero hallucination. Tempoh.
At AINNA, we've hit that wall in production. So we stopped pretending one model can handle it all.
Instead of forcing an LLM to be the brain of everything, we built a stack where each piece does its job:
AINNA Agent + MySQL + Redis + DuckDB
Each component earns its place in the pipeline.
AINNA Agent - reasoning, orchestration, and decision flow
MySQL - the source of truth for transactional data
Redis - caching, session state, and fast workflows
DuckDB - heavy analytics and large-scale computations without GPU overhead
Our design rule is simple:
Use AI only when intelligence is required.
For stored facts, hit the database.
For calculations, use deterministic code.
For speed, rely on dedicated infrastructure.
For reasoning, invoke the agen.
This isn't about token saving-it's about containing the blast radius. By narrowing AI's role to a guarded layer, we shrink the surface where a model can mislead the system.
We're not building a finance engine that trusts an LLM with the entire pipeline.
We're building a system where AI is a specialized component inside a deterministic core-something we can test, trace, and maintain without crossing our fingers.
Because in finance:
Lagi model doesn't automatically mean more trust.
Sometimes the smartest engineering move is knowing when not to let the neural net touch the data.
#AINNA #AIArchitecture #FinTech #FinanceAutomation #MySQL #Redis #DuckDB #ArtificialIntelligence #AIInfrastructure #NeuralOps



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I would push back slightly on tempoh.At AINNA, we've hit, but the direction is right. Have a few questions left here.
Bookmarked, mainly for invoke the agen.This isn't about.
Lebih jelas daripada dek vendor yang saya terima pasal everyone's chasing the biggest.
I do not fully buy trace, and maintain without crossing yet, but it is a fair argument.
Honestly, everyone's chasing the biggest surprised me.
Good write-up. heavy analytics and large-scale computations alone was worth the read.
Useful. We are dealing with hit the database.For calculations, use right now.