Technical Architect - ML
Quantiphi · United States
Skills in this posting
Extracted from the posting text by the instrument — the demand side, read literally.
The posting
While technology is the heart of our business, a global and diverse culture is the heart of our success. We love our people and we take pride in catering them to a culture built on transparency, diversity, integrity, learning and growth. If working in an environment that encourages you to innovate and excel, not just in professional but personal life, interests you- you would enjoy your career with Quantiphi ! Must have skills & Qualifications:
8+ years working in ML/AI engineering or MLOps roles with strong architecture exposure.
Strong expertise in AWS cloud-native ML stack , including: SageMaker(primary), EKS, Lambda, API Gateway, CI/CD (CodeBuild/CodePipeline or equivalent)
Hands-on experience with at least one major MLOps toolset and awareness of alternatives: MLflow, Kubeflow, SageMaker Pipelines, Airflow, BentoML, KServe, Seldon.
Deep understanding of model lifecycle management (feature engineering->training → registry → deployment → monitoring).
Experience implementing or supporting LLMOps pipelines , including: prompt versioning, evaluation metrics, automation frameworks
Deep understanding of ML lifecycle : data ingestion, feature engineering, training, evaluation, model packaging, CI/CD, drift detection, monitoring, and governance.
Strong experience with AWS SageMaker (Pipelines, Feature Store, Model Registry, Model Monitor).
Experience implementing ML CI/CD pipelines including automated training, testing, validation, model promotion, and endpoint deployment.
Experience working on Infrastructure as Code (IaC) tools and CI/CD pipelines
Experience with Kubernetes based development
Experience with feature engineering pipelines and Feature Store management .
Understanding of lineage tracking : training data snapshot, feature versions, code versioning, metadata tracking, reproducibility.
Hands-on experience with AWS Bedrock and Agentcore service
Experience with CloudWatch, SageMaker Model Monitor, Prometheus/Grafana.
Strong foundation in Python and cloud-native development patterns.
Solid understanding of security best practices, IAM, secrets management, and artifact governance.
Good to have skills
Experience with vector databases, RAG pipelines, or multi-agent AI systems.
Exposure to DevOps and infrastructure-as-code (Terraform, Helm, CDK).
Hands-on understanding of model drift detection, A/B testing, canary rollouts, and blue-green deployments.
Familiarity with Observability stacks (Prometheus, Grafana, CloudWatch, OpenTelemetry).
SQL and data transformation experience using Snowflake , Databricks, Spark.
Ability to translate business goals into scalable AI/ML platform designs.
Strong communication and cross-team collaboration skills.
Ability to guide engineering teams through technical uncertainty and design choices.
Key Responsibilities
Architect and implement the MLOps strategy for the programme , ensuring alignment with the project proposal and delivery roadmap.
Design and own enterprise-grade ML/LLM pipelines covering model training, validation, deployment, versioning, monitoring, and CI/CD automation.
Build container-oriented ML platforms (EKS-first) while evaluating alternative orchestration tools with similar capabilities (Kubeflow, SageMaker, MLflow, Airflow, etc.).
Implement hybrid MLOps + LLMOps workflows , including prompt/version governance, evaluation frameworks, and monitoring for LLM-based systems.
Serve as a technical authority across multiple internal and customer projects, contributing architectural patterns, best practices, and reusable frameworks.
Enable observability, monitoring, drift detection, lineage tracking, and auditability across ML/LLM systems.
Define and implement standards for model deployment, monitoring, governance, and automation to ensure production-grade reliability and scalability.
Collaborate with cross-functional teams — data engineering, platform, DevOps, and client stakeholders — to deliver production-ready ML solutions.
Ensure all solutions adhere to security, governance, and compliance expectations , particularly around handling cloud services, Kubernetes workloads, and MLOps tools.
Conduct architecture reviews, troubleshoot complex ML system issues, and guide teams through implementation across cloud-native ML platforms.
Mentor engineers and provide guidance on modern MLOps tools, platform capabilities, and best practices.
If you like wild growth and working with happy, enthusiastic over-achievers, you'll enjoy your career with us ! Originally posted on Himalayas
Excerpt from the original listing. The full, current text lives at the source. Read and apply there →
The PivotHop read
- What a solutions architect actually earnsmedian, seniority, by country
- Solutions Architect career changes, measuredevery measured route out
- Data Architect → Solutions Architect56% readiness
- MLOps Engineer → Solutions Architect53% readiness
- Software Engineer → Solutions Architect47% readiness
- All open solutions architect rolesthe full board
Where these skills also reach
Adjacent occupations measured from the same postings — readiness is what a solutions architect’s profile already covers.
- 7 open conversation designer roles55% readiness from solutions architect
- 206 open ai engineer roles40% readiness from solutions architect
- 377 open data engineer roles34% readiness from solutions architect
- 17 open mlops engineer roles30% readiness from solutions architect
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