
10,000+ employees
Founded 1989
💸 Finance
Finance • Consulting • Technology
EY is a global professional services firm, widely recognized for providing audit, tax, consulting, and advisory services. It focuses on helping its clients solve complex problems and transform their businesses using data and technology. EY is committed to building a better working world by enhancing trust in financial markets and economies globally. Its services include corporate finance advisory, transaction strategy, technology consulting, and more, catering to sectors such as health, energy, finance, government, and more. EY also emphasizes sustainability and innovation in its solutions.
🕒 July 7
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10,000+ employees
Founded 1989
💸 Finance
Finance • Consulting • Technology
EY is a global professional services firm, widely recognized for providing audit, tax, consulting, and advisory services. It focuses on helping its clients solve complex problems and transform their businesses using data and technology. EY is committed to building a better working world by enhancing trust in financial markets and economies globally. Its services include corporate finance advisory, transaction strategy, technology consulting, and more, catering to sectors such as health, energy, finance, government, and more. EY also emphasizes sustainability and innovation in its solutions.
• Structure business problems and drive viable, data-driven hypotheses in collaboration with business partners • Ability to skillfully enumerate a business problem, quantify its impact, size relevant data, and document applicable sources • Devise, develop and disseminate actionable intelligence from disparate data sources using advanced data analytics tools and techniques • Ability to identify needs and opportunities for advancements in innovations, processes and automation • Able to work proactively and take initiative without being specifically directed • Ability to extract & aggregate data from disparate data sources • Design, build, and deploy agentic AI systems using frameworks such as LangChain, LangGraph, and related libraries. • Develop and deploy multi-agent systems capable of autonomous decision-making, reasoning, planning, and collaboration. • Implement and optimize RAG systems, ensuring agents can access and incorporate external knowledge sources for grounded, accurate responses. • Fine-tune and prompt-engineer LLMs for task-specific reasoning, planning, and dynamic adaptation. • Lead the development of enterprise-grade AI platforms integrating LLMs, RAG, embeddings, and agentic AI protocols. • Implement and standardize Model Context Protocol (MCP) for consistent context management across models and agents. • Establish and enforce best practices for MLOps, monitoring, and observability, ensuring scalable and maintainable AI solutions. • Ability to perform in depth data analysis including but not limited to Machine Learning Classification Optimization Time Series analysis Pattern Recognition • Establish and develop end-to-end automated processes (i.e.: data analyses, model development & implementation, manual processes, etc) • Ability to communicate complex topics in an easy-to-understand manner when presenting to management • Ability to visualize data and intelligence in easy-to-understand story telling
• 5+ years overall experience in software development, data science, or machine learning. • 1+ year of hands-on experience developing AI applications with LLMs and systems such as retrieval-based methods, fine-tuning, or agent-based architectures. • Strong programming skills in Python and basics in SQL. • Expertise with LLM/SLM APIs, embeddings, and RAG systems. • Experience deploying on Google Cloud Platform (GCP) with Vertex AI, and IBM WatsonX. • Familiarity with agentic AI protocols and exposure to Agent Development Kits (ADKs). • Experience implementing Model Context Protocol (MCP) for agent coordination. • Prior exposure to LangGraph, AutoGen, or related orchestration frameworks. • 1+ year of experience with frameworks like LangChain, LlamaIndex, OpenAI, or similar tools. • Good communication, stakeholder management and good aptitude, attitude to be flexible. • Nice to have Experience in the functional side of Identity and Access management especially on identity governance, access management, privileged access, non-human identities, and worked on any IAM tools like SailPoint, Saviynt, CyberArk and SIEM/SOAR tools like Splunk etc. • Experience in strategy and roadmap work for Identity and Access management, especially in identifying use cases for automation, agentic AI workflows and roadmap for agentic AI lifecycle • 2 or more years’ experience with developing Robotic Process Automation and/or automation efforts • 2 or more years using Azure OR AWS cloud services • 2 or more years skilled at data visualization (Tableau, PowerBI, etc.) • 2 or more years with modern data engineering with APIs • 2 or more years applying agile SDLC • Experience in enterprise-scale deployments of AI-driven platforms. • Contributions to open-source AI/ML projects are a plus.
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