Quantiphi

Associate Architect - MLE

Quantiphi$125K — $150K *
US-AnywhereRemote in United States
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 7+ years of experience in machine learning engineering and architecture roles
  • Expert-level proficiency in Python for building enterprise-grade ML applications
  • Strong experience with FastAPI for designing scalable APIs
  • Hands-on experience in designing Agentic AI workflows and multi-agent systems
  • Proven track record in implementing CI/CD pipelines using Jenkins and GitLab Runners
  • Strong understanding of LLM orchestration and AI workflow automation
  • Excellent communication and stakeholder management skills

Responsibilities

  • Architect and enhance enterprise-grade Python SDK frameworks for better developer productivity
  • Design scalable Agentic AI architectures for automating complex business workflows
  • Lead the creation of reusable AI platform components focusing on performance and reliability
  • Optimize RESTful APIs using FastAPI to support AI services and inference pipelines
  • Define architecture standards and best practices for SDK and ML platform development
  • Establish CI/CD processes to automate deployment and testing
  • Collaborate with cross-functional teams to translate business needs into technical solutions
  • Monitor and improve model quality and system performance using observability strategies

Benefits

  • Opportunity to impact a leading AI-first digital engineering company
  • Professional development through problem-solving in advanced technology areas
  • Collaborative work environment with innovators and a strong patent portfolio
  • Exposure to new AI, ML, and cloud technologies while working with Fortune 500 clients
Full Job Description

Role:Associate Architect 6 Machine Learning Engineering (MLE)

Experience Level:7+ yrs

Work Location:Dallas, TX (2-3 days on site)

Role Overview:

Quantiphi is seeking an experienced Associate Architect 6 Machine Learning Engineering (MLE) to design and deliver scalable AI/ML platforms, developer frameworks, and Agentic AI solutions for enterprise applications. In this role, you will provide technical leadership in building production-grade machine learning systems, evolving Python SDK frameworks, and enabling intelligent autonomous workflows. You will work closely with product, platform, and engineering teams to define architecture, establish best practices, and build highly scalable AI solutions leveraging modern agentic frameworks.

This role requires deep expertise in Python, FastAPI, SDK development, MLOps, and distributed AI systems, along with the ability to mentor engineering teams and drive technical excellence across multiple initiatives.

Key Responsibilities:

  • Architect and evolve enterprise-grade Python SDK frameworks that improve developer productivity, extensibility, and maintainability across AI platforms.

  • Design scalable Agentic AI architectures and multi-agent systems capable of orchestrating complex business workflows with minimal human intervention.

  • Lead the design and implementation of reusable AI platform components, ensuring high performance, reliability, and security.

  • Build and optimize high-performance RESTful APIs using FastAPI to support AI services, inference pipelines, and autonomous agents.

  • Define architectural standards, coding guidelines, and engineering best practices for ML platforms and SDK development.

  • Design and implement CI/CD pipelines using Jenkins and GitLab Runners to automate testing, deployment, and release management.

  • Partner with Data Science, Product, Platform Engineering, and Cloud teams to translate business requirements into scalable technical solutions.

  • Establish observability, monitoring, and evaluation strategies using Galileo to improve model quality, agent performance, and production reliability.

  • Drive architectural decisions around scalability, resiliency, performance optimization, and software lifecycle management.

  • Mentor Machine Learning Engineers through technical guidance, design reviews, and best practices.

  • Evaluate emerging AI technologies and recommend architectural improvements to enhance enterprise AI capabilities.

  • Support production environments by troubleshooting complex distributed systems and ensuring high platform availability.

Basic Qualifications:

  • Expert-level proficiency in Python with extensive experience building enterprise-grade machine learning applications.

  • Strong experience designing scalable APIs using FastAPI.

  • Deep understanding of software engineering principles, object-oriented programming, and API design.

  • Hands-on experience designing and implementing Agentic AI workflows and multi-agent systems.

  • Experience building production-ready AI applications using modern Agentic Frameworks.

  • Strong understanding of LLM orchestration, autonomous agents, and AI workflow automation.

  • Extensive experience developing and maintaining Python SDKs or internal developer platforms.

  • Experience creating reusable frameworks, libraries, and tooling used across engineering organizations.

  • Strong experience implementing automated CI/CD pipelines using Jenkins and GitLab Runners.

  • Experience with release automation, artifact management, and deployment strategies.

  • Experience using Galileo for AI evaluation, observability, and production monitoring.

  • Knowledge of monitoring AI systems, debugging model behavior, and improving production performance.

  • Proven experience designing scalable, cloud-native AI platforms and distributed machine learning systems.

  • Strong understanding of microservices architecture, system scalability, security, and performance optimization.

  • Strong architectural thinking with excellent problem-solving abilities.

  • Ability to lead technical discussions and influence architectural decisions across teams.

  • Excellent communication and stakeholder management skills.

  • Proven ability to mentor engineers and foster technical excellence.

  • Ability to independently drive large-scale engineering initiatives from design through production.

Other Qualifications (OQs):

  • Experience with LLM-based applications and Agentic AI platforms.

  • Experience with Docker and Kubernetes.

  • Knowledge of cloud platforms such as AWS, Google Cloud Platform (GCP), or Azure.

  • Experience with MLOps tools and production ML deployment.

  • Experience with distributed systems and event-driven architectures.

  • Contributions to open-source AI, Python SDK, or Agentic AI projects.

  • Experience with infrastructure-as-code (Terraform or similar).

Whats in it for YOU at Quantiphi:

  • Make an impact at one of the worlds fastest-growing AI-first digital engineering companies.

  • Upskill and discover your potential as you solve complex challenges in cutting-edge areas of technology alongside passionate, talented colleagues.

  • Work where innovation happens - work with disruptive innovators in a research-focused organization with 60+ patents filed across various disciplines.

  • Stay ahead of the curve, immerse yourself in breakthrough AI, ML, data, and cloud technologies and gain exposure working with Fortune 500 companies.

About Quantiphi

Quantiphi is an artificial intelligence and machine learning services company that helps businesses transform their operations through the use of AI. The company provides a range of services, including data engineering, machine learning, computer vision, natural language processing, and predictive analytics. Quantiphi was founded in 2013 and is headquartered in King of Prussia, Pennsylvania.
Learn more about Quantiphi
Size
500 employees
Industry
Founded
2013

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