Northeastern University

Associate AI Engineer

Northeastern University$87K — $123K *
Education, Government & Non-Profit
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Linguistics, Computational Linguistics, Computer Science, or related field; 4-6 years of AI or machine learning experience; enterprise application focus.
  • Deep understanding of large language model capabilities and experience in prompt engineering for enterprise applications.
  • Strong proficiency in developing and deploying machine learning models and AI systems in production environments.
  • Excellent software development skills in Python and familiarity with TensorFlow/PyTorch, containerized deployments, and MLOps practices.
  • Extensive experience with end-to-end data pipelines and data warehousing solutions, utilizing Python, SQL, and CI/CD practices.

Responsibilities

  • Design and implement AI solutions to automate university operations like service desk automation and administrative task processing.
  • Create and manage end-to-end data pipelines for efficient data collection, processing, and preparation for AI systems.
  • Develop and fine-tune machine learning models tailored to university use cases, focusing on prompt engineering and domain adaptation.
  • Integrate AI systems with existing university infrastructure and deploy them in production following MLOPs best practices.
  • Monitor and optimize AI system performance and pipeline efficiency, addressing drift and improving model accuracy.

Benefits

  • Comprehensive medical, vision, and dental coverage.
  • Paid time off and tuition assistance provided.
  • Wellness programs and life insurance available.
  • Retirement plans included with additional commuting and transportation support.
Full Job Description
JOB SUMMARY

The Associate AI Engineer will be responsible for designing, developing, and implementing AI systems and data pipelines that enhance and automate university operations across multiple departments. Transforms manual processes into AI-driven solutions, focusing on building robust data pipelines, creating efficient machine learning models, and integrating AI capabilities into existing systems to improve efficiency, accuracy, and service quality while reducing operational costs, utilizing expertise in machine learning, natural language processing, data engineering, and AI system integration with existing enterprise infrastructure.

MINIMUM QUALIFICATIONS

Knowledge and skills required for this position are normally obtained through a Bachelor's degree in Linguistics, Computational Linguistics, Computer Science, or related field; with four to six years of experience working with AI or machine learning , with demonstrated success in enterprise applications. Experience in higher education or similar complex organizational environments preferred.

Other necessary skills:
  • LLM Expertise: Deep understanding of large language model capabilities, limitations, and optimal interaction patterns, with demonstrated experience designing effective prompts for enterprise applications.
  • AI/ML Development Expertise: Strong proficiency in developing and deploying machine learning models and AI systems in production environments, with deep knowledge of contemporary AI frameworks, tools, and best practices.
  • Software Engineering: Excellent software development skills with proficiency in Python, TensorFlow/PyTorch, and experience with containerized deployments and MLOps practices.
  • Data Pipeline Engineering: Extensive experience with end-to-end data pipelines, data warehousing solutions , processing frameworks, and container technologies, with proficiency in Python, SQL, and version control/CI/CD practices.
  • Machine Learning Engineering: Demonstrated experience in the full ML lifecycle including data preparation, feature engineering, model training, validation, deployment, and monitoring in production.
  • Natural Language Processing: Advanced knowledge of NLP techniques and large language models (LLMs), including prompt engineering, context management, and implementation strategies for enterprise applications.
  • Cloud Computing: Experience deploying and scaling AI systems in cloud environments, with knowledge of cloud-native AI services.
  • Solution Architecture: Ability to design scalable, secure, and efficient AI system architectures that meet enterprise requirements and performance standards.
  • System Integration: Ability to integrate AI solutions with existing enterprise systems, APIs, databases, and authentication services to create cohesive user experiences.
  • Performance Optimization: Experience optimizing AI models for both accuracy and computational efficiency in resource-constrained environments.
  • Security Awareness: Knowledge of security best practices for AI systems, including data protection, model security, and prevention of adversarial attacks.
  • Data Science: Strong understanding of data structures, algorithms, statistical analysis, and data visualization techniques relevant to AI applications.
  • AI Ethics and Governance: Understanding of ethical considerations in AI development, including bias mitigation, fairness, transparency, and compliance with relevant regulations.


KEY RESPONSIBILITIES & ACCOUNTABILITIES

AI System Design and Development

Design, develop, and implement AI solutions to automate and enhance university operations, including service desk automation, administrative task processing, and QA testing systems. Create robust, scalable architectures that integrate with existing university systems and accommodate future growth.

Data Pipeline Development and Management

Design and implement end-to-end data pipelines that efficiently collect, process, and prepare data for AI systems. Build robust ETL processes using tools like Apache Airflow, cloud services, and data warehousing solutions to ensure reliable data flow between source systems and AI applications. Implement data quality checks, monitoring, and governance practices throughout the pipeline.

Machine Learning Implementation and Fine-tuning

Develop and fine-tune machine learning models for specific university use cases, including customizing large language models through prompt engineering, transfer learning, and domain adaptation. Create efficient training pipelines and establish systematic evaluation protocols.

System Integration and Deployment

Integrate AI systems with existing university infrastructure, including identity management, knowledge bases, ticketing systems, and communication platforms. Deploy models to production environments following established MLOPs practices and ensuring appropriate monitoring.

Performance Monitoring and Optimization

Monitor AI system and data pipeline performance, detect and address drift or degradation, optimize resource utilization, and continuously improve model accuracy and efficiency based on real-world usage patterns and feedback.

Position Type

Information Technology

Additional Information

Northeastern University considers factors such as candidate work experience, education and skills when extending an offer.

Northeastern has a comprehensive benefits package for benefit eligible employees. This includes medical, vision, dental, paid time off, tuition assistance, wellness & life, retirement- as well as commuting & transportation. Visit https://hr.northeastern.edu/benefits/ for more information.

Compensation Grade/Pay Type:
111S

Expected Hiring Range:
$87,785.00 - $123,998.75

With the pay range(s) shown above, the starting salary will depend on several factors, which may include your education, experience, location, knowledge and expertise, and skills as well as a pay comparison to similarly-situated employees already in the role. Salary ranges are reviewed regularly and are subject to change.

About Northeastern University

Northeastern University is a private research university in Boston, Massachusetts. The university offers undergraduate and graduate programs on its main campus in Boston.
Learn more about Northeastern University
Size
2,700 employees
Industry

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