Machine Learning Engineer
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Role details
Tech stack
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Job description
Microsoft Azure, Vector Database Computer Science Machine Learning Enterprise Search Business Valuation Prompt Engineering Workflow Management Amazon Web Services Predictive Modeling Multi-Agent Systems Software Engineering Technology Ecosystems Full Stack Development Artificial Intelligence Large Language Modeling Business Transformation SQL (Programming Language) Python (Programming Language) Continuous Improvement Process Retrieval Augmented Generation Microsoft Certified Professional Natural Language Processing (NLP) Generative Artificial Intelligence Artificial Intelligence Infrastructure Applications Of Artificial Intelligence, Our client is seeking a Senior Machine Learning Engineer II to help build and scale advanced Agentic AI and Multi-Agent Systems that transform how professionals interact with information.
This role goes beyond traditional machine learning engineering. The ideal candidate will have experience designing intelligent AI systems capable of reasoning, planning, retrieval, tool utilization, workflow orchestration, and autonomous task execution across large-scale knowledge environments. You will work closely with Applied Scientists, ML Engineers, Architects, Product Leaders, and Software Engineers to develop production-grade AI systems that leverage Large Language Models (LLMs), RAG architectures, vector search, agent frameworks, and emerging reasoning technologies.
This position is ideal for engineers who have moved beyond basic prompt engineering and have experience building sophisticated AI applications capable of solving complex, multi-step business problems.
Key Responsibilities
Agentic AI Development
Design, build, and deploy production-scale multi-agent AI systems.
Develop agent workflows capable of planning, reasoning, retrieval, tool utilization, validation, and task execution., Implement shared memory, state management, context preservation, and agent communication frameworks.
Develop guardrails and validation systems to improve reliability and reduce hallucinations.
Retrieval-Augmented Generation (RAG)
Design and optimize enterprise-scale RAG architectures.
Develop advanced retrieval strategies leveraging:
Vector databases
Semantic search
Knowledge graphs
Metadata filtering
Hybrid retrieval approaches
Improve grounding, citation accuracy, retrieval quality, and relevance.
Optimize chunking strategies, embedding pipelines, and context management.
Machine Learning Engineering
Build scalable AI and machine learning services deployed into production environments.
Develop model evaluation frameworks for both traditional machine learning and LLM-based systems.
Create automated testing pipelines for prompts, retrieval systems, agent workflows, and AI outputs.
Fine-tune, evaluate, and optimize AI systems for performance, latency, quality, and cost.
AI Evaluation & Observability
Define and measure success metrics for agentic AI systems, including:
Task completion rates
Accuracy
Hallucination rates
Retrieval effectiveness
Cost efficiency
User satisfaction
Latency
Implement monitoring, observability, and evaluation frameworks for LLM applications.
Develop processes for continuous improvement and model governance.
Research & Innovation
Evaluate emerging AI technologies and frameworks.
Investigate advances in:
Multi-Agent Systems
Agentic AI
Reasoning Models
LLM Orchestration
Knowledge Retrieval
Autonomous AI Workflows
Contribute to architecture standards and AI platform strategy.
Participate in proof-of-concepts and innovation initiatives., Planning Equities Chunking Pipelines Operations Management Innovation Algorithms Agentic AI Scalability Reliability Data Science Communication Observability Shared Memory Test Automation Microsoft Azure Vector Database Computer Science Machine Learning Enterprise Search Business Valuation Prompt Engineering Workflow Management Amazon Web Services Predictive Modeling Multi-Agent Systems Software Engineering Technology Ecosystems Full Stack Development Artificial Intelligence Large Language Modeling Business Transformation SQL (Programming Language) Python (Programming Language) Continuous Improvement Process Retrieval Augmented Generation Microsoft Certified Professional Natural Language Processing (NLP)
Requirements
Planning Equities Chunking Pipelines Operations Management Innovation Algorithms Agentic AI Scalability Reliability Data Science Communication, Observability Shared Memory, Masters degree in Computer Science, Machine Learning, Data Science, Engineering, or related discipline.
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10+ years of software engineering, machine learning engineering, or applied AI experience.
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3+ years building production AI, LLM, or Generative AI solutions.
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Strong Python development experience.
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Experience developing production-grade Retrieval-Augmented Generation (RAG) systems.
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Experience building or supporting Agentic AI, AI orchestration, or multi-agent workflows., Bachelor’s degree in Computer Science, Machine Learning, Data Science, Engineering, or related discipline.
6+ years of software engineering, machine learning engineering, or applied AI experience.
3+ years building production AI, LLM, or Generative AI solutions.
Strong Python development experience.
Experience developing production-grade Retrieval-Augmented Generation (RAG) systems.
Experience building or supporting Agentic AI, AI orchestration, or multi-agent workflows.
Strong understanding of:
Large Language Models (LLMs)
Natural Language Processing (NLP)
Information Retrieval
Semantic Search
Embeddings
Prompt Engineering
Model Evaluation
Experience working with vector databases and retrieval platforms.
Strong software engineering fundamentals including testing, CI/CD, observability, and scalable system design.
Preferred Qualifications
Experience with agent frameworks such as:
LangGraph
AutoGen
CrewAI
Semantic Kernel
OpenAI Agents SDK
LlamaIndex Workflows
Experience implementing:
Multi-agent communication patterns
Shared memory architectures
Tool-calling agents
Autonomous workflows
Human-in-the-loop systems
Experience with cloud platforms including AWS, Azure, or GCP.
Familiarity with:
Kubernetes
Docker
MLOps
LLMOps
AI observability platforms
Knowledge graph or enterprise search experience.
Experience building AI systems in highly regulated or knowledge-intensive domains.
Skills
Python, Data science, Machine learning, Sql, Algorithm, Aws, agentic ai, mcp, Data, Predictive modelling, Artificial intelligence
Top Skills Details
Python,Data science,Machine learning,Sql,Algorithm,Aws,agentic ai,mcp, Individual compensation offered for this position within this range will depend on many factors, including qualifications, skills, relevant experience, job knowledge, geographic location, internal equity, and other pertinent job-related factors.
About the company
We’re partners in transformation. We help clients activate ideas and solutions to take advantage of a new world of opportunity. We are a team of 80,000 strong, working with over 6,000 clients, including 80% of the Fortune 500, across North America, Europe and Asia. As an industry leader in Full-Stack Technology Services, Talent Services, and real-world application, we work with progressive leaders to drive change. That’s the power of true partnership. TEKsystems is an Allegis Group company., We’re a leading provider of business and technology services. We accelerate business transformation for our customers. Our expertise in strategy, design, execution and operations unlocks business value through a range of solutions. We’re a team of 80,000 strong, working with over 6,000 customers, including 80% of the Fortune 500 across North America, Europe and Asia, who partner with us for our scale, full-stack capabilities and speed. We’re strategic thinkers, hands-on collaborators, helping customers capitalize on change and master the momentum of technology. We’re building tomorrow by delivering business outcomes and making positive impacts in our global communities. TEKsystems and TEKsystems Global Services are Allegis Group companies. Learn more at TEKsystems.com.
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