AI Engineer

April 9, 2026
Application ends: July 8, 2026
Apply Now

Job Description

Key Responsibilities

● Design production-grade prompt architectures for 8B-class models.

● Develop structured prompts for enterprise tasks such as classification, extraction, reasoning, and summarization.

● Optimize prompts for accuracy, latency, and cost efficiency.

● Build prompt evaluation frameworks to measure accuracy, hallucination rates, and consistency.

● Design reusable prompt libraries and prompt templates for enterprise workflows.

● Develop prompt-to-model migration strategies converting high-performing prompts into fine-tuned SLMs.

● Design and fine-tune LLMs for domain-specific enterprise tasks.

● Develop Small Language Models (SLMs) optimized for enterprise deployment.

● Build instruction tuning and supervised fine-tuning (SFT) pipelines.

● Design evaluation datasets and automated benchmarking frameworks.

● Implement retrieval augmented generation (RAG) pipelines and tool-augmented workflows.

● Collaborate with speech AI and document AI teams to build multimodal systems.

● Deploy models in private cloud or on-premise environments with strong security controls.

Required Qualifications

Education

Master’s degree or PhD in Computer Science, AI, Machine Learning, or a related field.

Experience & Technical Skills

● Strong expertise in Prompt Engineering for 7B–13B models (especially 8B models).

● Experience designing prompts for structured enterprise outputs.

● Experience building prompt evaluation datasets and benchmarking frameworks.

● Ability to convert prompt workflows into fine-tuned models.

● 2-4 years of experience in ML/NLP with 3+ years focused on LLMs or foundation models.

● Hands-on experience fine-tuning open-source models such as LLaMA, Mistral, Falcon, or Qwen.

● Experience with LoRA, QLoRA, adapters, and model distillation techniques.

● Strong understanding of transformers, tokenization, embeddings, and attention mechanisms.

● Strong Python engineering skills and experience with PyTorch.

AI Platform & Infrastructure

● Familiarity with Hugging Face, Accelerate, DeepSpeed, and Triton.

● Experience with vector databases and RAG architectures.

● Experience deploying models using Docker, Kubernetes, and cloud platforms.

Compliance & Enterprise Readiness

● Experience working in regulated environments.

● Understanding of data privacy, access controls, and AI auditability. ● Ability to design AI guardrails and human-in-the-loop workflows.

Nice to Have

● Experience applying LLMs in healthcare, insurance, or financial services. ● Exposure to speech-to-text or document AI pipelines.

● Experience building agentic AI systems.

● Experience optimizing models for low latency enterprise workloads.

Are you interested in this position?

Apply by clicking on the “Apply Now” button below!

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