AI Engineer
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Job description
As a Senior Machine Learning & Generative AI Engineer, you will provide technical leadership for the design, architecture, and implementation of enterprise AI and Generative AI solutions. You will operate at the intersection of AI/ML, software engineering, cloud architecture, and business strategy, translating emerging capabilities into secure, scalable, production-ready solutions. This role requires more than hands-on development. You will help define technical direction, establish architectural and engineering standards, influence the AI roadmap, mentor engineers, and partner closely with business leaders and enterprise architects. You will take complex and sometimes undefined business challenges and turn them into actionable technical strategies and solutions. You will also play a critical role in rapidly advancing Our ClientÂ’s Generative AI capabilities, helping move innovative ideas from experimentation and proof of concept through enterprise-scale production adoption. RESPONSIBILITIES Lead the architecture, design, development, and deployment of sophisticated AI, Machine Learning, and Generative AI solutions across the division Leverage large language models and other AI technologies to enable intelligent automation, advanced analytics, integrated insights, and new business capabilities Provide senior technical leadership across the AI solution lifecycle, taking initiatives from early exploration and architecture through development, production rollout, optimization, and ongoing operations Partner with business leadership and enterprise architects to shape the strategic roadmap for Machine Learning and Generative AI capabilities, including LLM application patterns, platform modernization, and enterprise governance Translate complex business challenges into scalable AI strategies, architectures, and technical solutions tied to measurable outcomes Lead the development and iteration of AI/ML and Generative AI proofs of concept, data and feature pipelines, model workflows, and production applications Facilitate technical discovery, what-if exploration, whiteboarding, architecture discussions, and design sprints to assess feasibility, identify opportunities, and validate business impact Establish and champion engineering standards for AI quality, governance, responsible and ethical AI, regulatory compliance, security, observability, and production readiness Drive continuous improvements in model quality and application performance through systematic experimentation, prompt engineering, evaluation frameworks, data and training versioning, and A/B testing Implement and advance AIOps and MLOps practices that improve the reliability, scalability, deployment, monitoring, and lifecycle management of AI models and applications Provide technical guidance and mentorship to engineers and teams developing LLM-powered applications, including context engineering, orchestration patterns, evaluation methodologies, and production integration Create reusable architectural patterns, templates, reference implementations, and engineering practices that accelerate consistent and scalable AI adoption Evaluate emerging Generative AI, Machine Learning, cloud, and agentic AI capabilities and determine their applicability to enterprise use cases Integrate AI and data solutions with microservices, event-driven architectures, enterprise systems, and external business partners while ensuring scalability, security, observability, and operational readiness Serve as a trusted technical partner to business and technology stakeholders, clearly communicating complex AI concepts, architectural decisions, opportunities, risks, and tradeoffs Champion the responsible adoption of AI while helping teams navigate ambiguity, emerging technologies, and rapidly evolving technical requirements, You will work across AI strategy, architecture, engineering, experimentation, governance, and production delivery while mentoring others and helping teams successfully adopt rapidly evolving AI capabilities. Our Client values diverse experiences, perspectives, skills, and a passion for innovation. If you are an experienced AI engineer who enjoys solving complex problems, influencing technical direction, and turning emerging AI capabilities into scalable enterprise solutions, we encourage you to apply.
Requirements
BachelorÂ’s degree in Science, Engineering, Mathematics, Statistics, Data Science, another quantitative field, or equivalent experience At least 5 years of experience deploying and supporting full-stack applications in enterprise environments, including several years integrating AI and Machine Learning capabilities into production applications Significant hands-on experience designing, developing, and deploying enterprise AI/ML systems and Generative AI applications Advanced experience with Generative AI application development, large language model integration, prompt and context engineering, AI evaluation, and production optimization Strong full-stack engineering experience spanning backend, frontend, and database technologies Experience with modern frontend frameworks such as React or Vue Strong proficiency with Python, TypeScript, Git, and SQL Deep understanding of software engineering design patterns and enterprise application architecture principles Experience designing secure, scalable, maintainable, resilient, and cost-optimized cloud-native applications Strong experience with AWS services, particularly Amazon Bedrock, SageMaker, S3, and Lambda Experience with infrastructure as code, including AWS CDK Strong knowledge of CI/CD pipelines, automated testing, DevOps practices, and production software engineering Experience implementing AIOps and MLOps practices across the AI development and deployment lifecycle Demonstrated understanding of responsible AI principles, governance, secure model deployment, and production AI risk considerations Ability to balance probabilistic AI approaches with deterministic software engineering patterns to create reliable, maintainable enterprise solutions Demonstrated ability to provide technical leadership and mentorship while influencing engineering practices across teams Strong communication skills with the ability to translate highly technical AI concepts into clear recommendations for technical and non-technical stakeholders Proven ability to collaborate with business leaders, architects, engineers, and cross-functional partners in remote and rapidly changing environments Strong critical thinking and problem-solving skills with the ability to bring structure and clarity to complex or undefined challenges High learning agility with the ability to evaluate emerging technologies, adapt to changing priorities, and rapidly develop expertise in new areas Commitment to fostering an inclusive environment that values diverse experiences, perspectives, ideas, and opinions Ability to work remotely with access to a high-speed internet connection Must be located in the United States or Puerto Rico Applicants must not currently or at any point in the future require sponsorship for employment PREFERRED QUALIFICATIONS Group Benefits or insurance industry experience Advanced degree in an analytical or quantitative field with demonstrated in-depth AI expertise Advanced experience with AI/ML Ops practices, distributed data processing, and real-time data pipelines Familiarity with data mesh principles and real-time analytics Experience or familiarity with single-cloud or multi-cloud agentic architectures for building LLM-based applications Experience designing production-grade AI solutions that combine probabilistic and deterministic approaches, including large language models, classical Machine Learning, and rules-based systems Advanced experience with AI evaluation, orchestration, model and application integration, and the development of maintainable production services, Candidates must have access to a high-speed internet connection and be located in the United States or Puerto Rico, This is an opportunity to play a senior technical role in shaping how Generative AI and Machine Learning are designed, governed, and operationalized within a complex enterprise environment. You will have the ability to influence architecture and strategy while remaining close to the technology and building solutions that move from experimentation into real-world production.
Benefits & conditions
Strong base and bonus structure 401(k) plan with a 2% company contribution and 6% company match Work-life balance supported through vacation, personal time, and paid holidays [MISSING: Additional health, dental, vision, and other benefits details not provided]
About the company
Our Client is advancing the use of Machine Learning and Generative AI across its Workplace Solutions division and is seeking a senior technical leader to help shape that transformation. This is an opportunity to influence AI strategy, architecture, governance, and adoption while delivering scalable, responsible technology solutions that enhance customer experiences, optimize operations, and create measurable business value.
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