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TK Elevator

AI Solutions Architect III

TK Elevator, Atlanta, Georgia, United States, 30383

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Overview

AI Solutions Architect III

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TK Elevator

– Atlanta, GA. Responsible for designing and implementing enterprise-level AI solutions, with a strong emphasis on generative AI, agentic AI, and ML-driven systems to address line-of-business (LOB) use cases. This role involves architecting scalable, innovative solutions that leverage generative models (e.g., LLMs, diffusion models), autonomous agentic systems, and ML algorithms to drive business value, enhance customer experiences, and optimize processes. The AI Solution Architect collaborates with cross-functional teams and stakeholders to deliver AI/ML-driven solutions tailored to specific LOB needs, such as sales, marketing, customer service, finance, and operations.

Responsibilities

Architect end-to-end AI and ML solutions, emphasizing generative AI (text, image, or code generation), agentic AI systems (autonomous agents for decision-making), and ML models (predictive analytics, classification) to address LOB use cases such as personalized marketing, customer support automation, financial forecasting, and operational efficiency.

Provide technical expertise to development teams, ensuring generative AI, agentic AI, and ML solutions are scalable, secure, and integrated with enterprise systems.

Partner with LOB leaders, data scientists, and IT teams to identify high-impact use cases, define requirements, and translate business needs into robust AI/ML architectures.

Evaluate and recommend AI/ML frameworks and tools (e.g., TensorFlow, PyTorch, Scikit-learn, Hugging Face, LangChain, AutoGen).

Design data pipelines to support generative AI, agentic AI, and ML models, ensuring high-quality data for training, fine-tuning, and inference in LOB contexts (e.g., customer data for personalization or transactional data for predictive analytics).

Integrate AI/ML solutions with enterprise systems (e.g., Salesforce, SAP, marketing platforms) to enable seamless LOB adoption and interoperability.

Optimize generative AI models, agentic systems, and ML algorithms for production performance, cost-efficiency, and accuracy, addressing LOB KPIs like prediction accuracy, response time, or customer satisfaction.

Establish governance frameworks for AI/ML solutions, ensuring compliance with regulations (e.g., GDPR, CCPA) and ethical standards, particularly for sensitive LOB applications like customer data handling or financial modeling.

Stay abreast of advancements in generative AI (multimodal models), agentic AI (multi-agent systems), and ML techniques (ensemble methods, reinforcement learning), proposing innovative solutions to enhance LOB outcomes.

Mentor data scientists, developers, and architects in best practices for designing and deploying generative AI, agentic AI, and ML solutions for LOB use cases.

Qualifications

Bachelor’s degree in Computer Science, Data Science, Artificial Intelligence. Master’s degree or PhD in AI, ML, or a related discipline is preferred.

5+ years of experience in solution architecture, with at least 3 years focused on designing and deploying generative AI, agentic AI, and ML solutions in enterprise environments.

Hands-on experience with AI/ML frameworks (e.g., TensorFlow, PyTorch, Scikit-learn, Hugging Face, LangChain) and agentic AI platforms for LOB applications.

Proven success delivering AI/ML solutions for LOB use cases (e.g., automated customer service, content generation, predictive analytics).

Expertise in generative AI techniques (LLMs, GANs, VAEs), agentic AI systems (autonomous agents, reinforcement learning), and ML algorithms (regression, clustering, decision trees).

Programming skills in Python, R, or Java with experience in AI/ML libraries and frameworks.

Strong knowledge of data engineering, including ETL pipelines, data lakes, and big data tools (e.g., Spark, Hadoop) for LOB data needs.

Experience with MLOps for deploying and managing AI/ML models in production.

Familiarity with cloud platforms (Azure preferred) and enterprise systems integration (APIs, microservices).

Ability to align AI/ML solutions with LOB objectives (e.g., increasing customer engagement, improving forecasting accuracy, streamlining operations).

Strategic thinking to identify high-value LOB use cases for AI/ML adoption.

Proficiency in Agile and DevOps methodologies for rapid solution delivery.

Deep understanding of enterprise architecture and AI/ML integration patterns for LOB systems.

Commitment to ethical AI practices, particularly for generative AI outputs, agentic decision-making, and ML model fairness.

Strong problem-solving and analytical skills tailored to LOB challenges.

Excellent communication skills to articulate AI/ML benefits to non-technical LOB stakeholders.

Dynamic personality, comfortable in ambiguous situations.

Fast learner and self-motivated to challenge status quo.

Flexibility to work with teams across time zones as part of a global role.

What we offer Provided they meet all eligibility requirements, employees are offered medical, dental, vision, flexible spending accounts, supplemental medical plans, life insurance, AD&D, disability coverage, optional life and dependent coverage, health savings account, identity theft monitoring, pet insurance, Employee Assistance Program, Wellness program, tuition reimbursement, and enrollment in the company 401k plan. Relocation assistance is offered for candidates relocating more than 50 miles. PTO, holidays, sick leave, and parental leave are described in the plan documents.

How to apply To apply, please click the Apply Now button. For questions, use the contact below and include the Job Requisition Number as a reference: Elevatorjobs.AMS@tkelevator.com

Seniority level

Mid-Senior level

Employment type

Full-time

Job function

Information Technology

Industries

Machinery Manufacturing, Facilities Services, and Construction

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