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AI​/ML full Stack Engineer & Lead

Job in Normal, McLean County, Illinois, 61761, USA
Listing for: SWITS DIGITAL Private Limited
Full Time position
Listed on 2026-05-09
Job specializations:
  • Software Development
    Cloud Engineer - Software, AI Engineer, DevOps, Full Stack Developer
Salary/Wage Range or Industry Benchmark: 100000 - 125000 USD Yearly USD 100000.00 125000.00 YEAR
Job Description & How to Apply Below
Position: Staff AI/ML full Stack Engineer & Lead

Overview

Title:

Staff AI/ML full Stack Engineer & Lead

Location:

Normal, IL

Mandatory Skillsets
  • Full stack software dev
  • AWS/Databricks cloud
  • AI pipeline
Role Summary

We are seeking a Staff AI/ML solution lead to lead the architecture, design, and delivery of high-performance, enterprise-grade applications. This role combines deep hands-on coding with high-level architectural decision-making. You will work across frontend, backend, cloud infrastructure, database selection and integration layers, ensuring our systems are secure, scalable, and maintainable while enabling long-term technical growth. This hybrid role combines hands-on software engineering, devops and architectural leadership, enabling the delivery of robust, scalable, and innovative AI systems.

Key Responsibilities
  • Architecture Leadership – Define system architecture, integration patterns, and technology standards for large-scale web and enterprise applications.
  • Full Stack Development – Build and maintain robust, responsive applications using modern frontend frameworks (React, Vue, streamlit or Angular) and backend services in Python, Golang or RUST.
  • Cloud & Infrastructure – Architect cloud-native solutions leveraging AWS with a focus on scalability, security, and performance. Implement containerized services with Docker and orchestrate deployments using Kubernetes (K8s).
  • API & Service Design – Develop RESTful and Graph

    QL APIs for internal and external integrations.
  • Dev Ops & CI/CD – Establish best practices for deployment pipelines, automated testing, and infrastructure-as-code (Terraform, Pulumi).
  • Performance Optimization – Drive system performance tuning, load balancing, and efficient code design.
  • Technical Mentorship – Coach and mentor engineers, conduct design/code reviews, and uphold engineering best practices.
  • Cross-Functional Collaboration – Partner with product, design, and business teams to deliver impactful solutions aligned with company objectives.
  • Databases:
    Will be performing database selection and deployment (strong devops experience required)
  • ML:
    Experience with both ML and LLM stack design (model hubs, vector DBs, embedding pipelines). The role required knowledge to deploy end-to-end architecture of ML applications, traditional and RAG applications, Design of the MLOPS architectures databricks, aws and google
  • ML ops:
    Strong understanding of Agentic AI, framework, best practices
  • Clouds:
    Databricks, AWS mandatory
  • End to End production level AI/ML product deployment experience is required
Required Qualifications
  • At least bachelor’s in Computer Science mandatory
  • 10+ years in deployment enterprise grade cloud level experience and 5+ years in software development
  • 5+ years of experience with Databricks and AWS MLops deployment
  • This role is more of a software lead and developer with strong Cloud experience to develop infra softwares.
  • Architect end-to-end agentic pipelines and tools for others to contribute in the team
  • The role required knowledge to deploy end-to-end architecture of ML applications, traditional and RAG applications.
  • Architect end-to-end AI/ML systems from data ingestion to model deployment.
  • Define best practices for model serving, data pipelines, and ML-OPS strategies.
  • engineering, including hands-on model development and architectural design.
  • Expertise in traditional ML, deep learning, LLMs, embeddings, and RAG frameworks.
  • Strong software engineering skills:
    Python, API development, microservices, database design, and version control (Git).
  • Experience with cloud platforms (AWS, Databricks, Google) and containerized deployments (Docker, Kubernetes).
  • Knowledge of ML-OPS, CI/CD for AI, and production model monitoring.
  • Strong understanding of software architecture patterns, distributed systems, and scalable data pipelines.
  • Databases:
    Will be performing database selection and deployment (strong devops experience required)
Preferred
  • Experience with event-driven architectures and messaging systems (NATs, Kafka, Rabbit

    MQ).
  • Familiarity with authentication and authorization frameworks (OAuth2, JWT, SSO).
  • Knowledge of observability and monitoring tools (Prometheus, Grafana, Open Telemetry).
  • Background in designing large-scale enterprise or SaaS platforms.
  • Python, Golang and Rust development experience is preferred
  • Experience in manufacturing and predictive maintenance is a plus
  • Background in controls engineering is a plus
Soft Skills
  • Strong decision-making and problem-solving skills in high-stakes technical environments.
  • Ability to lead and influence architectural direction across teams.
  • Excellent communication with both technical and non-technical stakeholders.
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