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Software Engineer II - AI & Agentic Automation

Software Engineer – AI & Agentic Automation

Role Overview

The Software Engineer – AI & Agentic Automation is responsible for designing, developing, integrating, and deploying enterprise-grade Intelligent Automation and Agentic AI solutions. This role focuses on leveraging Agentic AI platforms, Large Language Models (LLMs), automation technologies, and enterprise systems to deliver scalable, secure, and high-impact automation solutions across Pearson business units.


Key Responsibilities

Solution Design & Architecture

  • Conduct feasibility studies and provide technical recommendations during the solution design phase.
  • Design and implement multi-agent workflows for autonomous task execution with Human-in-the-Loop (HITL) controls.
  • Create Solution Design Documents (SDDs) based on Process Definition Documents (PDDs).
  • Collaborate with business analysts and stakeholders to understand business processes, data standards, guidelines, and automation requirements.

AI & Agentic Automation Development

  • Develop enterprise-grade Agentic AI solutions using LLMs, CrewAI, UiPath Agent Builder, Python, and REST APIs.
  • Build AI-powered assistants, conversational AI applications, and intelligent document processing solutions.
  • Design, develop, and deploy intelligent automation solutions using Microsoft Power Automate and UiPath.
  • Integrate automation solutions with enterprise applications, APIs, databases, and third-party platforms.
  • Utilize AI-assisted development tools such as Claude, Cursor, and GitHub Copilot to improve development efficiency, testing, and code quality.

Integration & Platform Engineering

  • Implement secure API integrations, including OAuth authentication and data exchange using JSON and XML.
  • Configure and manage AWS environments to support Agentic AI platforms and application development.
  • Implement Infrastructure as Code (IaC) using Terraform, AWS CloudFormation, or AWS CDK.
  • Work with relational databases such as SQL Server and PostgreSQL for data management and integration.

Testing, Monitoring & Continuous Improvement

  • Develop evaluation frameworks, test strategies, and validation processes for AI and automation solutions.
  • Monitor production AI systems for performance, reliability, quality, and compliance.
  • Analyze incidents, identify root causes, and implement continuous improvements through prompt engineering, model optimization, and workflow enhancements.
  • Support CI/CD implementation and DevOps best practices throughout the development lifecycle.

Required Skills & Experience

Technical Skills

  • Strong experience in:
    • Python
    • JavaScript
    • SQL
    • REST APIs
  • Hands-on experience with:
    • UiPath and/or Microsoft Power Automate
    • Excel Macros and VBA
    • Outlook Automation
    • Database integration
  • Strong understanding of:
    • OCR technologies
    • API integration and mapping
    • Prompt engineering
    • Tool calling and structured outputs
    • AI memory concepts and agent orchestration
  • Experience with:
    • Git, Bitbucket, and DevOps practices
    • CI/CD pipelines
    • OAuth authentication
    • JSON/XML data formats
    • Relational databases (SQL Server, PostgreSQL)

Cloud & Infrastructure

  • Experience provisioning and managing AWS environments.
  • Knowledge of Infrastructure as Code (Terraform, AWS CloudFormation, AWS CDK).
  • Understanding of scalable, secure, and production-ready cloud architectures.

Nice-to-Have Skills

  • Experience with Microsoft Copilot Studio.
  • Knowledge of Model Context Protocol (MCP) and agent interoperability.
  • Experience with AI frameworks such as:
    • LangChain
    • LangGraph
    • AutoGen
    • Semantic Kernel
    • CrewAI
  • Experience with vector databases and AI search platforms such as:
    • Pinecone
    • Azure AI Search
    • Weaviate
  • Experience building multi-agent or Agentic AI systems in enterprise environments.

Education

  • Bachelor's Degree in Computer Science, Engineering, Information Technology, or a related field.

Soft Skills

  • Strong analytical and problem-solving capabilities.
  • Excellent communication and technical documentation skills.
  • Ability to collaborate effectively with business and technology stakeholders.
  • Strong organizational and project management skills.
  • Ability to thrive in Agile/Scrum and fast-paced delivery environments.
  • Proactive mindset with a passion for innovation, AI, and automation.

See also

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