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I Built an Offline AI Accounts Book for My Father's Business

A developer built Bakery Daily Helper, an offline AI accounts book for their father's small bakery, using the open-source Gemma model running locally on a laptop. The app parses plain-English daily notes into a structured table, converts natural-language questions into queries that Python executes for exact arithmetic, and keeps all shop data on the machine with no internet or subscription required. The father reported the charts made it easier to track spending and income, though he found some AI-generated restocking suggestions unrealistic for his shop.

by read4 min views1 publishedOct 5, 2026

This is a submission for the Hacktoberfest Weekend Challenge: Build for a Friend My father runs a small local bakery and snack shop, and for years his accounts have lived in a notebook. Every day he writes down what he bought for the shop (snacks, milk, drinks, samosa and more), how much cash he received, how much came in online, and how much he set aside for tomorrow. At the end of the month, he adds it all up by hand.

I built Bakery Daily Helper to make that routine easier. He types the day's note the way he already writes it, for example:

snacks 3456, milk 800, samosa 500, cash 6100, online 2000, kept 2000

The app reads the note, fills in a table, and lets him check and correct it before saving. From there, he gets:

What to load next:

All screenshots and the video use fake sample data, not real numbers from the business.

A tool I built for my father's small local bakery. He keeps a daily notebook of what he buys for the shop, the cash and online money he receives, and what he keeps for tomorrow. He types the day's note in plain English, and Gemma fills in the table. He can also ask questions like "how much did I spend on milk last week?"

Built for Hacktoberfest Weekend DEV Challenge: Build for a Friend - Build something with open-source AI at its core

Private (shop data never leaves the laptop), free, and works offline. The stack is simple:

Gemma has two jobs in this project. First, it reads the daily note and turns it into a structured table. Second, it turns a question such as "Which category did I spend the most on this month?" into a small query. Python then runs that query on the saved data and finds the exact number, and Gemma explains the result in a friendly sentence.

I let Python handle all the maths on purpose. Small models are not reliable with arithmetic, and a shopkeeper's totals have to be exactly right.

A few things I learned along the way:

My father's notebook is his business. It shows what he buys, what he earns, and how his shop is doing. With a closed AI service, all of that would travel to someone else's server, and it would need an internet connection and probably a subscription. With Gemma running on the laptop, nothing leaves the machine, it costs nothing to run, and it works with no internet. For a small shop, that matters.

Being open also gave me control. I could swap Gemma 1B for 4B, rewrite the prompt, and match the categories to his real shop without asking anyone for permission.

To be honest, a closed model would probably be smarter and misread fewer notes. Here, privacy, zero cost and offline use were worth more than raw intelligence. And because Python does the calculations, the totals are always exact, and the table he checks before saving lets him catch any note the model misreads.

I showed him the app, and he liked it. He told me it is now much easier to understand how the shop is doing through the charts and graphs: he can quickly see what is going up or down, from his spending by category to the money coming in each day, and he can check the monthly credited money without any effort. Before, he had to keep records manually in a notebook. Now every entry is saved automatically. He also liked that the app can show patterns in the middle of the month, such as where to look more closely and where to invest.

He gave me honest feedback as well. Some of the tips on the "What to load next" page weren't realistic for a shop like his. They sounded like financial plans that, from his experience, would never work in practice. He still found the app useful, but his comment taught me something important: AI suggestions are only a starting point, and a shopkeeper's experience matters more. Making those suggestions more realistic is the first thing I want to improve.

Thank you for reading, and thanks to the Hacktoberfest team for the live streams that helped me get started.

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