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AI Engineer

MindlanceWashington, DC🇺🇸United StatesPosted 5 Jul 2026

Quick Overview

Work Type
On Site
Level
Mid Senior

Job Description

Job Title: Developer Premium II - AI Engineer
Location: Washington, DC
Duration: 7 Months with long term extension

Hybrid Onsite: 4 days per week from Day 1, with a full transition to 100% onsite anticipated soon.

AI Engineer: The AI Engineer will play a pivotal role in designing, developing, and deploying artificial intelligence solutions that enhance operational efficiency, automate decision-making, and support strategic initiatives for the environmental and social specialists within the client. This role is central to the VPU s digital transformation efforts and will contribute to the development of scalable, ethical, and innovative AI systems.

Qualifications and Experience

Education: Bachelor s or Master s degree in Computer Science, Data Science, Engineering, or related field.

Experience:

  • Minimum 3 years of experience in AI/ML model development and deployment.
  • Experience with MLOps tools (e.g., MLflow), Docker, and cloud platforms (AWS, Azure, Google Cloud Platform).
  • Proven track record in implementing LLMs, RAG, NLP model development and GenAI solutions.

Technical Skills:

  • Skilled in Azure AI/Google Vertex Search, Vector Databases, fine-tuning the RAG, NLP model development, API Management (facilitates access to different sources of data)
  • Proficiency in Python, TensorFlow, PyTorch, and NLP frameworks.
  • Expertise deep learning, computer vision, and large language models.
  • Familiarity with REST APIs, NoSQL, and RDBMS.

Certifications (Preferred):

  • Microsoft Certified: Azure AI Engineer Associate
  • Google Machine Learning Engineer
  • SAFe Agile Software Engineer (ASE)
  • Certification in AI Ethics

Objectives of the Assignment:

  • Develop and implement AI models and algorithms tailored to business needs.
  • Integrate AI solutions into existing systems and workflows.
  • Ensure ethical compliance and data privacy in all AI initiatives.
  • Support user adoption through training and documentation.
  • Support existing AI solutions by refinement, troubleshooting, and reconfiguration

Scope of Work and Responsibilities:

AI Solution Development:

  • Collaborate with cross-functional teams to identify AI opportunities.
  • Train, validate, and optimize machine learning models.
  • Translate business requirements to technical specifications.

AI Solution Implementation

  • Develop code, deploy AI models and into production environments, and conduct ongoing model training
  • Monitor performance and troubleshoot issues and engage in fine-tuning the solutions to improve accuracy
  • Ensure compliance with ethical standards and data governance policies.

User Training and Adoption:

  • Conduct training sessions for stakeholders on AI tools.
  • Develop user guides and technical documentation.

Data Analysis and Research:

  • Collect, preprocess, and engineer large datasets for machine learning and AI applications.
  • Recommend and Implement Data Cleaning and Preparation
  • Analyse and use structured and unstructured data (including geospatial data) to extract features and actionable insights.
  • Monitor data quality, detect bias, and manage model/data drift in production environments.
  • Research emerging AI technologies and recommend improvements.

Governance, Strategy, Support, and Maintenance:

  • Advise client's staff on AI strategy and policy implications
  • Contribute to the team s AI roadmap and innovation agenda.
  • Provide continuous support and contribute towards maintenance and future enhancements.

Deliverables:

  • Work on Proof of Concepts to study the technical feasibility of AI Use Cases
  • Functional AI applications integrated into business systems.
  • Documentation of model/application architecture, training data, and performance metrics.
  • Training materials and user guides.
  • Develop, train, and deploy AI models tailored to business needs

    Mindlance is an Equal Opportunity Employer and does not discriminate in employment on the basis of Minority/Gender/Disability/Religion/LGBTQI/Age/Veterans.

Skills

Docker
AWS
MLOps
MLflow
Machine Learning
NLP
Agile
Azure
Computer Vision
Deep Learning
Google Cloud
PyTorch
Python
REST
SAFe
TensorFlow

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