Senior AI Engineer | Python, RAG, Voice AI, AWS, n8n, LangChain & Production LLM Systems
Бюджет: $500.0
FIXED /
⭐ 5.00 (2)
Australia
python, automation, api-development, api-integration, django-framework, flask, automated-workflow-deliverable
Preferred qualifications
- Talent type: Independent
- Experience: Intermediate
- Job Success: 90%+
- Rising Talent preferred
- Min. earnings: $1,000+
## Project Overview
We are seeking a highly experienced **Senior AI Automation Engineer** to design and build production-grade AI applications that combine Large Language Models (LLMs), intelligent automation, cloud infrastructure, and scalable backend systems.
This is **not** a basic chatbot project. We are looking for someone who can architect complete AI solutions—from backend APIs and retrieval systems to workflow automation and cloud deployment.
The ideal candidate has hands-on experience building production AI systems using Python, AWS, modern LLM frameworks, and automation platforms.
---
## Responsibilities
* Design and develop production-ready AI applications using Python.
* Build intelligent AI agents capable of tool calling, memory, and multi-step reasoning.
* Develop Retrieval-Augmented Generation (RAG) systems using vector databases and knowledge bases.
* Engineer reliable prompts, structured outputs, and guardrails to ensure safe, accurate AI responses.
* Integrate OpenAI, Claude, Gemini, or other LLM providers.
* Create scalable REST APIs using FastAPI or Django.
* Build workflow automations using n8n, Zapier, or Make.
* Deploy applications on AWS using Docker and CI/CD best practices.
* Integrate third-party services such as CRM platforms, Google Workspace, Microsoft Graph, Slack, Calendly, Stripe, and webhooks.
* Design AI systems that interact with databases, external APIs, and internal business tools.
* Optimize performance, security, monitoring, and deployment pipelines.
* Write clean, maintainable, and well-documented production code.
---
## Required Skills
### AI & LLM Engineering
* OpenAI GPT-4o
* Claude
* Gemini
* Llama
* Prompt Engineering
* Function Calling
* Structured Outputs
* Multi-Agent Systems
* AI Agent Architecture
* Model Context Protocol (MCP)
### RAG & Knowledge Systems
* LangChain
* LangGraph
* LlamaIndex
* Pinecone
* Weaviate
* ChromaDB
* Supabase Vector
* Embedding Pipelines
* Semantic Search
* Knowledge Base Construction
* Hallucination Reduction Techniques
### Backend Development
* Python
* FastAPI
* Django
* Flask
* REST APIs
* Async Programming
* WebSockets
* Celery
* Redis
### Automation
* n8n
* Zapier
* Make.com
* Workflow Automation
* AI Process Automation
* CRM Automation
* Webhooks
### Voice AI (Preferred)
* Vapi
* ElevenLabs
* Retell AI
* Twilio
* LiveKit
* Speech-to-Text
* Text-to-Speech
### Cloud & DevOps
* AWS EC2
* AWS Lambda
* API Gateway
* S3
* IAM
* CloudWatch
* Docker
* Docker Compose
* GitHub Actions
* CI/CD
* Linux
### Databases
* PostgreSQL
* MySQL
* MongoDB
* Redis
* Supabase
---
## Nice to Have
* AI-powered document processing
* OCR pipelines
* Computer Vision
* AI Voice Agents
* Healthcare AI
* Recruitment Automation
* AI Customer Support
* Internal Enterprise AI Assistants
* Agentic Workflows
* Prompt Evaluation and Testing
* AI Observability and Monitoring
---
## What We're Looking For
We're looking for an engineer who understands how to build **real AI products**, not just prototype chatbots.
You should be comfortable designing scalable architectures, integrating multiple AI services, orchestrating automation workflows, deploying to AWS, and delivering reliable, production-ready applications.
If you've built AI agents, RAG systems, workflow automation, voice AI applications, or cloud-native AI platforms, we'd love to hear from you.
When applying, please include:
* Relevant AI projects you've built.
* GitHub or portfolio links.
* Technologies used.
* Your role in the project.
* Experience with AWS deployments.
* Experience with n8n or workflow automation.
* Experience building RAG or multi-agent systems.
* Examples of production AI applications you've delivered.
We value engineers who can own projects end-to-end—from architecture and implementation to deployment and optimization.
~Mathew
Please include keywork "Flab" at the start of your proposal to get noitced
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