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Bonacci Studio

Agentic, Visual Data Engineering and Data Science Platform

Most AI data tools stop at generating a snippet you still have to run yourself. Bonacci Studio's agent has real tool access: it connects to your database, inspects schemas, writes PySpark or SQL, executes it on Spark, streams logs back, and debugs its own failures. Also included: a visual drag-and-drop DAG builder, Kafka streaming, Apache Camel API integration, RAG knowledge bases, and native MCP support. Bring your own model - Claude, GPT, Gemini, Groq, or fully local via Ollama

Top comment

Hey Product Hunt 👋 I've spent years building data pipelines, and the same thing kept happening: I'd ask an LLM for help, get a beautiful PySpark script, and then spend the next 40 minutes finding out it hallucinated three column names that don't exist in my schema. The model wasn't the problem. The model just couldn't see anything. So I built Bonacci Studio around one idea: give the agent real access, not a description of reality. When you ask it to build a daily revenue rollup, it doesn't guess - it calls inspect_schema("orders"), gets back 14 real columns and 2.4M rows, writes the PySpark against what's actually there, runs it on Spark, and streams the logs into your browser. If it fails, it reads its own stack trace and fixes it. What's in it: • Agentic engine - DB tools, SSH tools, code-gen, all in a real tool-calling loop • Visual DAG builder - drag-and-drop for when you'd rather not type • Three engines under the hood - Spark (batch), Kafka (streaming), Camel (APIs) • Native MCP - client and server, so the agent extends to any MCP tool, and your other agents can drive Studio • Bring your own model - Claude, GPT, Gemini, Groq, or fully local with Ollama • RAG knowledge bases so the agent knows your internal docs, not just your schema It's built on Apache Spark, Kafka and Camel - proven infrastructure for data heavy loads. The name derived from 'Fibonacci'. Pipelines grow the way nature does, one connection building on the last. Free tier is real, not a trial - bring your own model key, connect a source and a target, and actually run pipelines. No card. $29/mo if you want scheduling and more room. I'm here all day and genuinely want the honest feedback.

About Bonacci Studio on Product Hunt

Agentic, Visual Data Engineering and Data Science Platform

Bonacci Studio was submitted on Product Hunt and earned 10 upvotes and 11 comments, placing #123 on the daily leaderboard. Most AI data tools stop at generating a snippet you still have to run yourself. Bonacci Studio's agent has real tool access: it connects to your database, inspects schemas, writes PySpark or SQL, executes it on Spark, streams logs back, and debugs its own failures. Also included: a visual drag-and-drop DAG builder, Kafka streaming, Apache Camel API integration, RAG knowledge bases, and native MCP support. Bring your own model - Claude, GPT, Gemini, Groq, or fully local via Ollama

On the analytics side, Bonacci Studio competes within Developer Tools, Artificial Intelligence and Data & Analytics — topics that collectively have 996.2k followers on Product Hunt. The dashboard above tracks how Bonacci Studio performed against the three products that launched closest to it on the same day.

Who hunted Bonacci Studio ?

Bonacci Studio was hunted by Mallesh Madapathi. A “hunter” on Product Hunt is the community member who submits a product to the platform — uploading the images, the link, and tagging the makers behind it. Hunters typically write the first comment explaining why a product is worth attention, and their followers are notified the moment they post. Around 79% of featured launches on Product Hunt are self-hunted by their makers, but a well-known hunter still acts as a signal of quality to the rest of the community. See the full all-time top hunters leaderboard to discover who is shaping the Product Hunt ecosystem.

For a complete overview of Bonacci Studio including community comment highlights and product details, visit the product overview.