Senior Full-Stack AI Engineer (RAG, Laravel, Next.js, Node, AWS)
Budget: $25.0 - $50.0
HOURLY / FULL_TIME
⭐ 5.00 (19)
Australia
node.js, python, laravel-framework, next.js, amazon-web-services, elasticsearch, docker, typescript
Föredragna kvalifikationer
- Erfarenhet: Expert
We're building an AI-powered search and Q&A platform that lets teams query their own documents and internal data in plain language. We need a senior engineer who can own the AI layer and the application around it.
To be clear about what this role is: the core of the work is production RAG. If your experience is limited to calling an LLM API through a wrapper library, this will be a frustrating fit. We need someone who has dealt with bad retrieval, argued about chunking strategy, measured whether a change actually improved answer quality, and watched a token bill get out of hand.
You'll also be building the product around those AI features, so we need real full-stack depth alongside it.
WHAT YOU'LL BE DOING
Building RAG pipelines end to end: ingestion, chunking, embeddings, vector storage, hybrid retrieval, re-ranking, and evaluation
Improving answer quality with measurement behind it, not guesswork
Fine-tuning models where it's justified, and saying so when it isn't
Building and maintaining backend services in Laravel and Node.js across a microservices setup
Building front-end interfaces in Next.js and TypeScript
Indexing and relevance tuning in Elasticsearch or OpenSearch
Deploying and running everything on AWS with Docker and automated CI/CD
Owning latency, cost, and reliability for the features you ship
WHAT YOU NEED
8+ years building software professionally, with at least 3 years on LLM-based products
Shipped RAG to production, including vector databases (pgvector, Pinecone, Qdrant, Weaviate, or OpenSearch k-NN) and LLM APIs (OpenAI, Anthropic, or AWS Bedrock)
Laravel (PHP 8+) and Node.js, with solid API design and microservices experience
Next.js, React, TypeScript
Elasticsearch or OpenSearch: mappings, analyzers, relevance tuning
AWS: ECS or EKS, Lambda, S3, RDS, SQS, IAM, CloudFront
Docker and CI/CD pipelines (GitHub Actions, GitLab CI, or similar)
MySQL or PostgreSQL, plus at least one NoSQL store
Clear written English and the ability to explain trade-offs without hand-waving
NICE TO HAVE
Kubernetes and Terraform
Python for ML and data tooling
Agent orchestration (LangChain, LlamaIndex, or something you built yourself)
LLM observability: tracing, token and cost monitoring
Experience with document-heavy B2B SaaS products
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