Slalom Consulting

General Information

Slalom Consulting$157K — $196K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 6+ years of experience implementing ML/AI solutions in production environments, including classical ML and deep learning.
  • 3+ years in a consulting or IT services role with a strong client-facing technical focus.
  • Hands-on design experience for production AI systems integrating models, data, orchestration, and security.
  • Deep knowledge of modern GenAI and its operational patterns.
  • Familiarity with frameworks like LangChain and Hugging Face and proficiency in Python programming.

Responsibilities

  • Architect and execute enterprise-scale AI systems across various components and workflows.
  • Design secure, scalable cloud architectures using platforms like AWS and Google Cloud.
  • Lead the design of applied AI solutions including generative AI and decision-support systems.
  • Advance production capabilities for GenAI and agentic AI with various engineering practices.
  • Establish evaluation methods for AI systems focusing on reliability and performance.
  • Promote Responsible AI principles, ensuring compliance and governance in deployments.
  • Mentor cross-functional teams, guiding them towards successful project delivery.

Benefits

  • Meaningful time off and paid holidays for work-life balance.
  • Parental leave support and a 401(k) plan with a matching benefit.
  • Comprehensive subsidized health, dental, and vision insurance options.
  • $350 yearly wellness reimbursement for personal well-being expenses.
  • Discounts on home, auto, and pet insurance.
Full Job Description
Description and Requirements

Job Description

AI/ML Architect - Principal

**** Please note: This role is not eligible for 100% remote work. Employees must live within a commutable distance of a Slalom Office and must be willing to be onsite at the client and/or Slalom office when needed up to 3 days a week. ****

What You'll Do
  • Architect and deliver enterprise-scale AI systems spanning data products, retrieval pipelines, model orchestration, agentic workflows, evaluation, deployment, monitoring, optimization, and lifecycle management.
  • Design secure, scalable, cloud-native and hybrid architectures across AWS, Azure, and Google Cloud, including modern AI platform services such as Amazon Bedrock, Azure AI Foundry, Google Vertex AI, and enterprise data platforms.
  • Lead applied AI solution design across generative AI, agentic AI, multimodal AI, advanced RAG, knowledge assistants, prediction, optimization, computer vision, and decision-support use cases.
  • Enable production GenAI and agentic AI adoption, including advanced RAG, tool/function calling, structured outputs, workflow orchestration, model routing, prompt and context engineering, memory patterns, and human-in-the-loop controls.
  • Define AI evaluation, observability, and reliability patterns, including offline test sets, automated evals, tracing, hallucination detection, quality scoring, latency/cost monitoring, feedback loops, and regression testing.
  • Champion Responsible AI and AI security practices, including governance, explainability, privacy, bias mitigation, guardrails, data protection, threat modeling, access controls, auditability, and compliance-by-design.
  • Evaluate emerging models, platforms, frameworks, standards, and deployment patterns, providing practical recommendations based on use case fit, enterprise readiness, cost, risk, and operational complexity.
  • Lead and mentor cross-functional delivery teams of data engineers, AI engineers, ML engineers, software engineers, architects, and consultants, ensuring on-time, high-quality outcomes.
  • Support business development through proposals, client pitches, solution accelerators, reference architectures, technical points of view, and thought leadership.
  • Coach and mentor junior consultants, fostering a culture of continuous learning, engineering discipline, responsible innovation, and practical AI adoption across the AI/ML practice.


What You'll Bring
  • 6+ years of experience implementing ML/AI solutions in production, including classical ML, deep learning, generative AI, or agentic AI systems.
  • 3+ years of experience in professional consulting or IT services, with proven ability to lead client-facing technical engagements.


  • Hands-on experience designing production AI systems that combine models, data, retrieval, orchestration, APIs, security controls, observability, and user experience into an end-to-end architecture.
  • Deep understanding of modern GenAI patterns, including advanced RAG, embeddings, vector and hybrid search, re-ranking, knowledge graphs, tool/function calling, structured outputs, context engineering, and multimodal inputs.
  • Experience with agentic AI architecture patterns, including single-agent and multi-agent workflows, supervisor/worker patterns, state and memory management, workflow orchestration, human approval gates, and safe action execution.
  • Proficiency with modern AI engineering frameworks and tools such as LangChain, LangGraph, LlamaIndex, Semantic Kernel, Haystack, CrewAI, Hugging Face, or comparable open-source and cloud-native frameworks.
  • Strong programming skills in Python and modern software engineering practices, with familiarity in APIs, event-driven patterns, test automation, infrastructure as code, and scalable service design.
  • Proficiency in cloud AI/ML platforms and services such as Amazon Bedrock, AWS SageMaker, Azure AI Foundry, Azure Machine Learning, Google Vertex AI, and related model hosting, retrieval, agent, and evaluation capabilities.
  • Experience with enterprise data and AI ecosystems such as Databricks, Snowflake, Spark, Kafka, dbt, vector databases, lakehouse architectures, and modern data governance patterns.
  • Experience with MLOps, LLMOps, CI/CD, model and prompt versioning, automated evaluation, observability, containerization, Kubernetes, serverless deployment, and cost/performance optimization.
  • Strong understanding of AI architecture tradeoffs, including model selection, retrieval strategy, latency, accuracy, security, privacy, scalability, cost, vendor lock-in, and operating model implications.
  • Ability to communicate complex AI concepts to technical and non-technical stakeholders, translating architecture choices into business value, delivery risk, and executive-level decisions.
  • Experience managing delivery teams and shaping AI/ML roadmaps, reference architectures, implementation backlogs, and adoption plans for enterprise clients.
  • Strong problem-solving, critical thinking, and business acumen, with the judgment to distinguish viable production solutions from prototype-only patterns.


Compensation and Benefits

Slalom prides itself on helping team members thrive in their work and life. As a result, Slalom is proud to invest in benefits that include meaningful time off and paid holidays, parental leave, 401(k) with a match, a range of choices for highly subsidized health, dental, & vision coverage, adoption and fertility assistance, and short/long-term disability. We also offer yearly $350 reimbursement account for any well-being-related expenses, as well as discounted home, auto, and pet insurance.

Slalom is committed to fair and equitable compensation practices. For this role, we are hiring at the Principal level and targeted base pay salary range as follows:

  • Boston, New Jersey, New York City, Washington DC, White Plains: $171,000 - $214,000
  • All other locations: $157,000 - $196,000


In addition, individuals may be eligible for an annual discretionary bonus. Actual compensation will depend upon an individual's skills, experience, qualifications, location, and other relevant factors. The salary pay range is subject to change and may be modified at any time.

We are committed to pay transparency and compliance with applicable laws. If you have questions or concerns about the pay range or other compensation information in this posting, please contact us at: [redacted].

About Slalom Consulting

Slalom Consulting is a business and technology consulting firm headquartered in Seattle, Washington. The company provides consulting services in areas such as technology, strategy, data and analytics, and organizational effectiveness. Slalom Consulting was founded in 2001 and has since grown to have over 30 offices across the United States, Canada, and Europe. The company has been recognized as one of the best places to work by several publications, including Fortune and Glassdoor.
Learn more about Slalom Consulting
Size
10,000 employees
Industry
Founded
2001

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