Senior AI/ML Engineer Python,RAG & Multimodal AI

Compunnel

$110K — $130K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Strong proficiency in Python.
  • Hands-on experience building RAG solutions.
  • Experience with vector databases like Pinecone and Weaviate.
  • Solid understanding of embeddings and semantic search.
  • Expertise in crafting prompts for LLMs.
  • Experience in developing multimodal AI applications.
  • Familiarity with foundation models and LLMs.

Responsibilities

  • Design and implement RAG pipelines for enterprise applications.
  • Build and optimize semantic search solutions using vector databases.
  • Develop multimodal AI solutions for various data formats.
  • Create prompts to enhance LLM performance.
  • Implement strategies for data processing and retrieval.
  • Evaluate and refine AI solution quality and latency.
  • Work with teams to integrate AI into business applications.

Benefits

  • Collaborative work environment with cross-functional teams.
  • Opportunity to work on cutting-edge AI applications.
  • Focus on solving complex problems in an enterprise setting.
  • Access to emerging AI technologies and tools.
  • Chance to shape the future of intelligent enterprise applications.
Full Job Description
Job Summary

We are seeking a Senior AI/ML Engineer with strong expertise in Retrieval-Augmented Generation (RAG), vector databases, multimodal AI, and prompt engineering. The role focuses on building enterprise-scale intelligent AI applications that leverage both structured and unstructured data, while optimizing solution quality, accuracy, performance, and latency.

Key Responsibilities
• Design and implement enterprise-scale Retrieval-Augmented Generation (RAG) pipelines.
• Build and optimize semantic search solutions using vector databases.
• Develop multimodal AI applications capable of processing text, images, documents, and other data formats.
• Create and optimize prompts to improve LLM performance and accuracy.
• Develop data ingestion, chunking, embedding, retrieval, and ranking strategies.
• Evaluate and improve AI solution quality, accuracy, and latency.
• Collaborate with cross-functional teams to integrate AI capabilities into enterprise applications.

Required Qualifications
• Strong proficiency in Python.
• Hands-on experience building RAG solutions.
• Experience with vector databases such as Pinecone, Weaviate, Milvus, Chroma, or OpenSearch.
• Strong understanding of embeddings, retrieval strategies, and semantic search.
• Expertise in prompt engineering.
• Experience building multimodal AI solutions.
• Strong knowledge of LLMs and foundation models.

Preferred Qualifications
• Experience with Amazon Bedrock and AWS AI services.
• Familiarity with LangChain for RAG implementations.
• Knowledge of AI evaluation frameworks and AI observability tools.
• Experience deploying AI/ML applications in production environments.
• Knowledge of Agentic AI concepts.
• Experience with LangGraph or multi-agent architectures.
• Exposure to MLOps and model deployment pipelines.

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