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Federal Express Corporation

AI Engineer III

memphis, TN

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Job description

Domicile Information

This is a hybrid position located in Plano, TX or Pittsburgh, PA or Memphis, TN. Candidates must live within 50 miles of the campus location. Employees will be required to work at the FedEx campus location several times per week.

The AI Engineer is responsible for designing, developing, deploying, and maintaining artificial intelligence and machine learning solutions that support intelligent automation, predictive insight, and advanced analytics across the enterprise. As a hands-on builder, this role applies software engineering principles to write production-quality code, build scalable AI systems, including AI Agents and data pipelines, and integrate AI models into new and existing business applications. The AI Engineer collaborates closely with Data Scientists, Data Engineers, ML Ops Engineers, and Platform teams to bring machine learning models from prototype to production. A critical part of this function is to ensure that AI use cases are transitioned from experimentation into reliable, governed, and business-ready solutions by owning their complete operational readiness. This includes implementing robust observability, defining Service Level Objectives (SLOs), and establishing clear incident response and rollback strategies for all AI services.

Essential Functions

Model Development & Implementation 

Write clean, efficient, and well-documented code to develop and implement machine learning and AI models that support various business use cases. 

Implement data engineering and preprocessing workflows required for model inputs. 

Continuously optimize the performance and scalability of AI applications and models. 

ML Pipelines & Operations (MLOps) 

Design, develop, and maintain scalable ML pipelines for model training, validation, inference, and deployment. 

Collaborate with ML Ops Engineers to package and deploy models into enterprise systems using established MLOps practices. 

Monitor deployed models in production for performance, data drift, and reliability, and troubleshoot and resolve any issues that arise. 

Establish and own the operational readiness of all AI services by defining and implementing Service Level Objectives (SLOs) for key metrics, such as p50/p95 latency and availability, and creating robust monitoring and alerting for model drift, latency, and error rates. 

Collaboration & Integration 

Work closely with Data Scientists to transition experimental models and research prototypes into robust, production-ready systems. 

Support the integration of AI capabilities into enterprise workflows, applications, and digital platforms. 

Contribute to the documentation and explainability of model outputs to ensure clarity for business stakeholders. 

Governance & Strategy 

Ensure all deployed AI systems comply with enterprise governance, fairness, and security standards. 

Evaluate emerging AI technologies, such as LLMs and generative AI, to assess their applicability to business problems and drive innovation. 

Ensure AI solutions support auditability, explainability, traceability, and regulatory compliance requirements 

Implement memory management, context engineering, planning, and multi-step reasoning strategies 

Define and track quality metrics such as groundedness, faithfulness, relevance, task completion rate, and user satisfaction 

Knowledge, Skills, and Abilities

Core Technical & AI Proficiency 

Strong coding skills in Python, Java, or C++, including API development and software design 

Deep understanding of core machine learning concepts, including classification, regression, clustering, and deep learning architectures. 

Hands-on experience with modern deep learning frameworks and algorithms (supervised/unsupervised), such as PyTorch, TensorFlow, or similar for building and training complex neural networks. 

Skills in working with LLMs, prompt engineering, fine-tuning, and using frameworks like LangChain and LangGraph to build RAG (Retrieval-Augmented Generation) systems. 

Handling data wrangling, SQL, data warehousing, and ETL pipelines to prepare data for models 

End-to-End ML Model Lifecycle 

Proven experience in the end-to-end model lifecycle: developing, training, and deploying machine learning models from prototype to production. 

Mastery of data preprocessing, feature engineering, and model evaluation techniques to ensure robust and accurate model performance. 

Demonstrated ability to build and optimize scalable data pipelines for training and evaluating machine learning models. 

Strong knowledge of both SQL and NoSQL databases for querying and managing data for AI applications. 

Software & MLOps Engineering 

Solid foundation in software engineering best practices, including version control (Git), automated testing, and CI/CD pipelines. 

Hands-on experience with containerization using Docker and container orchestration with Kubernetes for scalable deployment. 

Expertise in MLOps observability, including model monitoring to track performance and drift, and establishing model/version lineage, telemetry, and traceability. 

Experience implementing advanced testing and deployment strategies, including canary/shadow deployments and comprehensive test suites (unit, integration, adversarial, regression). 

Demonstrated ability to integrate AI models and services into enterprise applications by building and consuming RESTful APIs. 

Cloud & Infrastructure 

Proficiency with at least one major cloud platform (GCP, AWS, Azure) and its associated AI/ML services (e.g., Vertex AI, SageMaker, Azure ML). 

Experience with big data technologies, such as Apache Spark or similar, for processing large-scale datasets in a cloud environment. 

Collaboration & Frontend Development 

Strong problem-solving and analytical skills, with the ability to collaborate effectively in an Agile development environment. 

Excellent communication skills to articulate complex technical concepts to both technical and non-technical stakeholders. 

Experience with modern frontend JavaScript frameworks such as React, Vue.js, Angular or similar for building user-facing applications that consume AI models. 

Minimum Education

Bachelor's degree in Computer Science, Data Science, Engineering, or related field is required; Master's is highly preferred.

Minimum Experience

Needs 3-5+ years of dedicated experience designing and shipping ML models to production. Should have led the design of a significant ML-powered feature.

Pay Range

Plano, TX: $9,719 / mo - $13,812 / mo

Pittsburgh, PA: $10,231 / mo - $13,812 / mo

Memphis, TN: $10,231 / mo - $13,112 / mo 

Preferred Qualifications:

Pay Transparency:

Pay: Plano, TX: $9,719 / mo - $13,812 / mo ; Pittsburgh, PA: $10,231 / mo - $13,812 / mo ; Memphis, TN: $10,231 / mo - $13,112 / mo

Additional Details:

For details on our comprehensive benefits, click here .

Federal Express Corporation is an Equal Opportunity Employer including, Vets/Disability.

Reasonable accommodations are available for qualified individuals with disabilities throughout the application process. Applicants who require reasonable accommodations in the application or hiring process should contact .

Applicants have rights under Federal Employment Laws:

Know Your Rights

Pay Transparency

Family and Medical Leave Act (FMLA)

Employee Polygraph Protection Act

E-Verify Program Participant: Federal Express Corporation participates in the Department of Homeland Security U.S. Citizenship and Immigration Services' E-Verify program (For U.S. applicants and employees only). Please click below to learn more about the E-Verify program:

E-Verify Notice (bilingual)

Right to Work Notice (English) / (Spanish)

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