R
Reindeer
AI Engineer

AI Engineer

On-siteMidAI Engineerposted 14mo ago
Role summaryAI-generated

This role focuses on designing and implementing AI agents that automate repetitive business tasks, particularly in document processing and data extraction, while ensuring seamless integration into enterprise workflows. The ideal candidate will bridge technical AI development with business impact, driving measurable outcomes for clients in real-world operational environments.

Skills required

About this role

We're building an agentic AI platform that helps enterprises transform complex business workflows into AI-powered operations. We work with leading global companies to identify high-value workflows, deploy AI agents into real business environments, and help organizations move from experimentation to measurable enterprise impact.

We believe AI adoption inside the enterprise isn't just a technology challenge. It requires business context, workflow understanding, change management, trust, ownership, and a clear path to value. That's where this role comes in.

We are a well-funded, early-stage startup, looking for a talented and motivated AI Engineer to join our team. The focus of this role is to develop advanced AI agents aimed at automating and optimizing low-skill human tasks, with a special emphasis on document processing, data extraction, text and email comprehension, and related workflows. You will be responsible for researching, designing, and deploying AI solutions that can replace repetitive manual tasks, improving efficiency and scalability for organizations.

Your Impact

AI Agent Development

  • Design, develop, and implement AI agents using best of breed LLMs to automate document processing tasks across enterprise workflows.

Workflow Automation

  • Build machine learning pipelines to automate content-heavy processes for enterprise businesses.

Model Optimization

  • Fine-tune and optimize pre-trained LLMs to accurately interpret, classify, and process large volumes of documents, improving speed and accuracy.

Collaboration

  • Partner with product, engineering, and business teams to identify high-value automation opportunities and integrate AI-driven solutions into our operations.

Evaluation & Testing

  • Develop metrics and conduct extensive testing to ensure reliability and efficiency of the AI systems in real-world scenarios.

What It Takes

Experience

  • 5+ years of experience as a software engineer or data scientist building production systems.

  • 2+ years of experience with large language models and NLP techniques.

  • Background in developing AI agents for content heavy tasks.

  • Experience with multiple LLM Vendors, RAG or Fine Tuning OSS or Commercial models.

Technical Skills

  • Proficiency in Python and machine learning libraries such as TensorFlow or PyTorch.

  • Deep understanding of LLM architectures and NLP applications like entity recognition, document classification, and summarization.

  • Experience with model grounding techniques, retrieval-augmented generation (RAG), and deploying robust AI models in production environments.

  • Skills in designing and deploying AI models through APIs, containerization (Docker, Kubernetes), and cloud platforms (AWS, GCP, Azure).

  • Understanding of best practices for continuous monitoring, evaluation, and iterative improvement of deployed models.

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