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Ai Platform Engineer Jobs in Edison, NJ (NOW HIRING)

AI Platform Engineer

Manhattan, NY ยท On-site

$163K - $215K/yr

The Opportunity MassMutual's AI Platform Engineering team is seeking an impact-driven AI Platform Engineer to serve as the technical anchor of our high-performing team. You will lead the design ...

AI Platform Engineer

Manhattan, NY ยท On-site

$180K - $200K/yr

POSITION SUMMARY Bayview Asset Management is seeking an AI Platform Engineer to help build the firm's Enterprise AI Platform that powers intelligent applications, AI agents, workflow automation, and ...

AI Platform Engineer

Manhattan, NY ยท On-site

$150K - $200K/yr

POSITION SUMMARY Bayview Asset Management is seeking a AI Platform Engineer to help build the firm's Enterprise AI Platform that powers intelligent applications, AI agents, workflow automation, and ...

Own the technical roadmap for our AI platform, making architectural decisions that will shape our systems for years to come * Bridge AI and Engineering : Collaborate with ML engineers and researchers ...

Own the technical roadmap for our AI platform, making architectural decisions that will shape our systems for years to come * Bridge AI and Engineering : Collaborate with ML engineers and researchers ...

Lead AI Platform Engineer

New York, NY ยท On-site

$112K - $147K/yr

Both need a senior engineering owner, and both need to grow into the foundation of how OUTFRONT ... If you've wanted to build a meaningful AI platform from the ground up inside a company that ...

Lead AI Platform Engineer

New York, NY ยท On-site

$112K - $147K/yr

Both need a senior engineering owner, and both need to grow into the foundation of how OUTFRONT ... If you've wanted to build a meaningful AI platform from the ground up inside a company that ...

Senior AI Platform Engineer

New York, NY

$114K - $157K/yr

As Senior AI Platform Engineer, you will own the technical capability layer that makes that possible. You will build and maintain the platform infrastructure, connectors, execution patterns, and self ...

Lead AI Platform Engineer

Fairfield, NJ ยท On-site

$104K - $137K/yr

Both need a senior engineering owner, and both need to grow into the foundation of how OUTFRONT ... If you've wanted to build a meaningful AI platform from the ground up inside a company that ...

Data & AI Platform Engineer

New York, NY

$125K - $150K/yr

Minimum 2 years in a data engineering, platform engineering, analytics engineering, or cloud ... Demonstrated experience with AI/ML/GenAI enablement (model lifecycle, AI Search, Azure OpenAI ...

AI Engineer - AI Platform

New York, NY ยท On-site

$150K - $300K/yr

The Role As an AI Platform Engineer at Traversal, you'll work on the core foundations that make Traversal's AI possible while ensuring Traversal's platform, products, and applications are delivered ...

AI Engineer - AI Platform

New York, NY ยท On-site

$150K - $300K/yr

The Role As an AI Platform Engineer at Traversal, you'll work on the core foundations that make Traversal's AI possible while ensuring Traversal's platform, products, and applications are delivered ...

Our AI platform, 1Exiger, delivers instant visibility into complex supplier ecosystems, leveraging ... Engineering | Platform Engineering | Hybrid (US) U.S. Citizenship Required We're looking for an ...

Senior Platform Engineer

New York, NY ยท On-site

$114K - $157K/yr

Senior Platform Engineer About Titan ... Titan is an AI holding company transforming IT services with its Augmented AI platform. We acquire ...

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Ai Platform Engineer information

See Edison, NJ salary details

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How much do ai platform engineer jobs pay per hour?

As of Sep 1, 2026, the average hourly pay for ai platform engineer in Edison, NJ is $66.21, according to ZipRecruiter salary data. Most workers in this role earn between $52.26 and $76.39 per hour, depending on experience, location, and employer.

What is an AI Platform Engineer?

AI Platform Engineers are technology professionals who design, build, and maintain the infrastructure that supports the development, deployment, and scaling of artificial intelligence (AI) and machine learning (ML) models. They work closely with data scientists and software engineers to ensure that AI solutions can run efficiently and securely in production environments. Their responsibilities often include managing cloud or on-premises platforms, automating workflows, and implementing best practices for model versioning, monitoring, and resource optimization.

How does an AI Platform Engineer typically collaborate with data scientists and software engineers in a project environment?

AI Platform Engineers often serve as a bridge between data scientists and software engineers, ensuring that machine learning models are seamlessly integrated into scalable, production-ready systems. They work closely with data scientists to understand model requirements and deployment needs, and with software engineers to embed these models within applications and services. This collaboration involves frequent communication, joint troubleshooting, and participation in code reviews to maintain a robust and efficient AI infrastructure.

What are the key skills and qualifications needed to thrive as an AI Platform Engineer, and why are they important?

To thrive as an AI Platform Engineer, you need strong programming skills (especially in Python and Java), a background in computer science or related fields, and experience with machine learning frameworks. Familiarity with cloud platforms (like AWS, Azure, or GCP), containerization tools (Docker, Kubernetes), and CI/CD systems is typically required, along with certifications such as Google Cloud Professional Machine Learning Engineer. Excellent problem-solving, collaboration, and communication skills help you integrate AI solutions across teams and projects. These competencies ensure the efficient development, deployment, and maintenance of scalable AI systems in dynamic production environments.

What is the difference between Ai Platform Engineer vs Data Engineer?

AspectAi Platform EngineerData Engineer
CredentialsBachelor's in CS, AI, or related; experience with cloud platformsBachelor's in CS, Data Science, or related; experience with databases and ETL tools
Work EnvironmentDeveloping AI infrastructure, deploying ML models, working with cloud servicesBuilding data pipelines, managing data storage, ensuring data quality
Industry UsageTech companies, AI startups, cloud providersFinance, healthcare, e-commerce, any data-driven industry

While both roles involve working with data and cloud platforms, Ai Platform Engineers focus on building and maintaining AI infrastructure and deploying machine learning models. Data Engineers primarily develop data pipelines and manage data storage. The roles often collaborate but serve different core functions within AI and data ecosystems.

How to become an AI platform engineer?

To become an AI platform engineer, you should have a strong background in computer science, software engineering, or related fields, with expertise in machine learning frameworks, cloud computing, and programming languages like Python or Java. Gaining experience with AI tools, data management, and infrastructure deployment is essential, often supported by certifications in cloud platforms such as AWS or Azure. Building a portfolio of projects and staying updated on AI and DevOps practices can also enhance your qualifications.

What does an AI platform engineer do?

An AI platform engineer designs, develops, and maintains the infrastructure and tools needed to deploy and manage artificial intelligence models at scale. They work with cloud services, programming languages, and machine learning frameworks to ensure efficient model training, deployment, and monitoring in production environments.

What is the salary of AI platform engineer?

The salary of an AI platform engineer typically ranges from $100,000 to $150,000 annually, depending on experience, location, and company size. Senior roles or those with specialized skills in cloud platforms and machine learning may earn higher compensation.

What are popular job titles related to Ai Platform Engineer jobs in Edison, NJ?

For Ai Platform Engineer jobs in Edison, NJ, the most frequently searched job titles are:

What job categories do people searching Ai Platform Engineer jobs in Edison, NJ look for?

The top searched job categories for Ai Platform Engineer jobs in Edison, NJ are:

What cities near Edison, NJ are hiring for Ai Platform Engineer jobs?

Cities near Edison, NJ with the most Ai Platform Engineer job openings:

Infographic showing various Ai Platform Engineer job openings in Edison, NJ as of August 2026, with employment types broken down into 51% Full Time, 42% Part Time, 3% Temporary, and 4% Contract. Highlights an 77% Physical, 3% Hybrid, and 20% Remote job distribution, with an average salary of $137,716 per year, or $66.2 per hour.

AI Platform Engineer

Manhattan, NY โ€ข On-site

MassMutual
Finance and Insuranceย โ€ขย 201 - 500 employees

$163K - $215K/yr

Full-time

Re-posted 22 days ago


Job description

The Opportunity

MassMutualโ€™s AI Platform Engineering team is seeking an impact-driven AI Platform Engineer to serve as the technical anchor of our high-performing team. You will lead the design, deployment, set engineering standards, and drive the most complex platform initiatives from concept through production. 

The Team

This is a unique opportunity to work on the team that builds and operates the platform powering MassMutualโ€™s AI initiatives. The team operates at the intersection of cloud infrastructure, AI/ML systems, and developer experienceโ€”delivering foundational capabilities that shape how the entire organization builds and deploys AI. We partner closely with AI engineering, product, and cloud engineering teams across the enterprise, and we invest in growth through a culture of peer learning, candid feedback, and shared technical standards. This team is defined by a shared commitment to engineering excellence, clear documentation, and the kind of technical leadership that makes hard problems tractable.

The Impact
  • Define architectural direction at the AI platform component levelโ€”cloud infrastructure, AI serving layers, developer tooling, and reliability strategyโ€”and translate it into a concrete, prioritized roadmap.
  • Lead design on one of the platformโ€™s most critical componentsโ€”LLM gateway, multi-tenant compute isolation, model serving infrastructure, and enterprise integration patterns. Write ADRs that become the teamโ€™s engineering standards.
  • Serve as the first point of technical escalation for hard engineering decisions. Run design reviews, provide deep technical feedback on pull requests, and pair with engineers on the gnarliest problems.
  • Own the technical execution of major platform initiatives end to endโ€”scoping, sequencing work, managing technical risk, and driving to production without losing quality.
  • Lead platform reliability strategy: define SLOs, shape the observability strategy, lead incident reviews, and continuously raise the bar on platform stability and operational maturity.
  • Lead technical design of governance and compliance controlsโ€”data residency, access management, audit logging, and AI usage policiesโ€”to satisfy enterprise customer requirements and compliance frameworks.
  • Drive cross-team alignment with AI engineering, product, and cloud engineering teams; communicate technical trade-offs clearly and represent platform capabilities to senior stakeholders.
  • Raise the technical craft of the team through thorough design reviews, documentation habits, and hands-on pairingโ€”without managing anyone directly.
The Minimum Qualifications
  • 5+ years in platform, infrastructure, or SRE, with a track record as a technical lead or staff-level IC with team-wide technical scope.
  • Certified Kubernetes Administrator (CKA), Certified Kubernetes Application Developer (CKAD) or equivalent AWS Certifications.
  • 3+ years experience in cloud-native architecture: Kubernetes at scale, managed cloud services, networking, identity federation, and multi-tenancy patterns across AWS, GCP, or Azure.
  • 3+ years experience of proven ownership of complex, multi-month platform initiativesโ€”driven from whiteboard to production, managing ambiguity and technical risk throughout.
The Ideal Qualifications
  • Strong IaC and GitOps fluency: Terraform or Pulumi, ArgoCD, with experience standardizing platform tooling and deployment patterns across engineering teams.
  • Hands-on experience with AI/ML infrastructure: model serving, inference pipelines, GPU resource management, or LLM integration patterns.
  • Experience mentoring engineers and influencing technical direction across teams.
  • Strong written communication: clear design docs, useful ADRs, and the ability to explain architectural decisions to both engineers and non-technical stakeholders.
  • LLM serving at scaleโ€”vLLM, Triton, Ray Serveโ€”or experience with AI gateway design patterns.
  • Experience building an internal developer platform (IDP) from scratch, with a product mindset that obsesses over internal developer experience.
  • Strong grasp of AI safety, model evaluation, and governance frameworks.
  • Ability to lead through technical credibilityโ€”influencing design decisions, driving alignment, and raising quality without formal authority.
  • FinOps or GPU cost optimization experience across large inference workloads.
  • Open-source contributions to platform or ML infrastructure tooling.
  • Comfort with ambiguity: energized by undefined problem spaces, with a habit of building clarity and shared context where there isnโ€™t any.
What to Expect as Part of MassMutual and the Team
  • Regular meetings with the AI Platform Engineering team
  • Focused one-on-one meetings with your manager
  • Networking opportunities including access to Asian, Hispanic/Latinx, African American, women, LGBTQIA+, veteran and disability-focused Business Resource Groups
  • Access to learning content on Degreed and other informational platforms
  • Your ethics and integrity will be valued by a company with a strong and stable ethical business with industry leading pay and benefits

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