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Job Description
Machine Learning Engineer
Open Slots: Multiple
Remote / Hybrid | Start: Immediate
Your mission
Engineer, optimize, and deploy cutting-edge NLP and Generative AI systems directly into production. You will bridge the gap between experimental research and scalable infrastructure, turning complex unstructured data into high-throughput RAG pipelines and enterprise-ready LLM applications that don't fail under real-world load.
STACK
→ Python / scikit-learn
→ PyTorch / TensorFlow
→ LangChain / LlamaIndex
→ OpenAI API / Vector DBs (Pinecone, Weaviate)
→ Containerization: Docker / Kubernetes
→ Cloud Infrastructure: AWS / GCP
CORE PROTOCOLS
01 // Production First — Notebooks prove concepts; clean, containerized MLOps code delivers revenue.
02 // Precision at Scale — Continuous monitoring, embedding optimization, and chunking strategies must withstand dirty, high-volume production datasets.
03 // Architectural Ownership — Ship complete end-to-end models, from data ingestion to low-latency API integration.
More Info
Key Skills
LangChain
scikit-learn
Vector DBs
Pinecone
OpenAI API
Weaviate
LlamaIndex
