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아마
Senior AI Solution Architect
아마존(Amazon) · 강남구, 서울, 한국
About The Role
Amazon Web Services (AWS) is leading the next phase of AI adoption and is seeking a hands-on AI Specialist Solution Architect (SSA). AWS Specialist Solutions Architects (SSAs) are technologists with deep domain-specific expertise, able to address advanced concepts and feature designs. As part of the AWS sales organization, SSAs work with customers who have complex challenges that require expert-level knowledge to solve. This role focuses on converting AI ambition into programs that can be delivered, operated, and scaled in production environments.
- Build technical relationships with customers of all sizes and operate as their trusted advisor, ensuring they get the most out of the cloud while adopting GenAI/ML and Agentic technologies
- Manage the overall technical relationship between AWS and customers, making recommendations on security, cost, performance, reliability and operational efficiency to accelerate GenAI/ML and Agentic projects
- Serve as the voice of the customer internally, sharing their needs to impact the roadmap of AWS GenAI/ML and Agentic features
- Link technology to tangible solutions by defining cloud-native GenAI/ML and Agentic architectural patterns for a variety of use cases
- Participate in the creation and sharing of best practices, technical content and new reference architectures (e.g. white papers, code samples, blog posts)
- Evangelize and educate about running GenAI/ML and Agentic workloads on AWS technology (e.g. through workshops, user groups, meetups, public speaking, online videos or conferences)
- Lead hands-on deep dives and technical workshops, contributing reusable code, reference architectures, and internal technical assets for the broader engineering organization
- 5+ years of design/implementation of production AI systems
- Experience implementing AI solutions including integration of LLMs/multi-modal FMs in large scale systems, fine-tuning LLMs, deployment and distributed inference of LLMs, RAG, FM evaluation, Vector DBs, Agentic workflows, prompt/context engineering, and MLOps
- Hands-on experience with AWS ecosystems (including Bedrock, AgentCore, and SageMaker) to set up secure, private-network AI environments
- Practical experience implementing Retrieval-Augmented Generation using embeddings, vector stores, and semantic search optimization
- Ability to effectively communicate across an increasing diversity of audiences internally and externally
- Ability to influence customer and internal business decision makers as a technical thought leader
- Proven ability to lead projects with complex challenges with extensible, operationally excellent, cost optimized, and aligned solutions outcomes
- Ability to lead a team or small organization-wide initiative with business objectives that are partially defined
- Strong ability to determine solution strategy and where to simplify or extend solutions for the best outcome
- Master's degree in computer science, mathematics, statistics, machine learning or equivalent quantitative field, or PhD
- Experience in running & fine-tuning Large and Small Language Models using advanced techniques like LoRA/QLoRA, Instruction Tuning, and RLHF to optimize for specific domain tasks
- Expertise in architecting AI systems within highly regulated or security-sensitive environments (e.g., Financial Services, Healthcare, Public Sector)
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