Enterprise AI/RAG MVP Developer
Budget: -
HOURLY / PART_TIME
⭐ 5.00 (12)
Oman
html5, css3, adobe-illustrator, graphic-design
Bevorzugte Qualifikationen
- Erfahrung: Fortgeschritten
Looking for a Python/AI developer to build a small working MVP for an enterprise AI platform.
The MVP needs to demonstrate three things:
1. Automated Data Ingestion
Use n8n + Google Drive to:
Detect new/updated documents
Extract and process content
Apply Microsoft Presidio for PII/privacy protection
Generate embeddings
Store embeddings in Qdrant
Make documents available for RAG
Use existing tools and APIs wherever possible. Keep custom code to a minimum.
2. Chat-to-SQL
Build a simple, safe natural-language-to-SQL capability.
The MVP must work with:
Wide World Importers — primary enterprise dataset
Chinook — secondary test dataset
PostgreSQL
SQL Server
Example:
"Which customers generated the most revenue last year?"
The system should generate and safely execute read-only SQL and return the answer.
The LLM must not have unrestricted database access. Use a controlled database tool/skill with basic SQL validation, limits and logging.
3. Traceability
Show what happened behind an answer using Langfuse or structured logs:
User question → RAG/SQL → retrieved data → model → final answer.
Preferred Stack
Python, FastAPI, n8n, Qdrant, PostgreSQL, SQL Server, Presidio, LiteLLM, Langfuse, Docker.
4. Privacy & Data Redaction — Microsoft Presidio
Use Microsoft Presidio to demonstrate privacy protection before data reaches an external LLM.
The MVP should support:
PII detection
Redaction and/or pseudonymisation
Configurable sensitive-data rules
Processing documents/data before embedding or LLM processing
Demonstration of what was detected and protected
Privacy is a core part, not an optional feature.
Deliverable
A working, Docker-deployable MVP that can be demonstrated to a customer.
This is not a research project. I want someone who can build a practical MVP quickly using existing tools wherever possible.
Please send examples of similar LLM/RAG, Chat-to-SQL or n8n projects you have built.
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