Sr. AI Developer, Engineering

Eversana1

United States

On-site

USD 150,000 - 190,000

Full time

7 days ago
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Job summary

Eversana1 is seeking an experienced Senior AI Agency Engineer to design, build, and deploy enterprise-grade AI solutions that connect generative AI, automation, compliance, and business systems. You will lead technical discovery with clients and translate business needs into scalable architectures.

You will partner with product, engineering, data, security, and delivery teams to bring production-ready AI solutions to market and mentor junior engineers throughout the development lifecycle.

Qualifications

  • Bachelor's degree in Computer Science, Engineering, Information Systems, or equivalent.
  • 9+ years in software engineering, solution engineering, or related roles.
  • 5+ years designing and deploying production cloud-based AI/enterprise solutions.
  • Advanced programming in Python and at least one other language.

Responsibilities

  • Lead client discovery sessions and translate requirements into technical designs.
  • Design end-to-end AI-enabled integrations and workflows.
  • Develop production integrations and data pipelines.
  • Build and deploy AI workflows within secure, scalable architectures.
  • Guide transition from prototype to production deployment.

Skills

Python
JavaScript/TypeScript
C#
Java
.NET
Google Cloud Platform
Docker
Kubernetes
CI/CD

Education

Bachelor's degree in Computer Science or Engineering

Tools

Veeva Vault
Salesforce Marketing Cloud
SharePoint
Adobe Experience Cloud
Snowflake
BigQuery
Vertex AI

Job description

The Senior AI Agency Engineer designs, builds, and deploys enterprise-grade AI solutions that connect generative AI, workflow automation, compliance controls, and business systems to accelerate pharmaceutical and healthcare marketing operations.

This role combines the responsibilities of a senior software engineer, solutions architect, and client-facing technical consultant. The individual leads technical discovery with clients, translates business requirements into scalable technical solutions, develops integrations and AI workflows, and partners across product, engineering, data, security, and delivery teams to bring production-ready AI solutions to market.

The ideal candidate possesses deep expertise in modern software engineering, cloud-native architecture, enterprise integrations, and generative AI technologies, along with the communication skills needed to engage both technical teams and executive stakeholders.

ESSENTIAL DUTIES AND RESPONSIBILITIES:

Our employees are tasked with delivering excellent business results through the efforts of their teams. These results are achieved by:

Client Discovery & Technical Leadership
  • Lead technical discovery sessions with client business, IT, architecture, security, data, and operations teams.
  • Translate business objectives, workflows, and operational challenges into technical requirements, architecture designs, and implementation plans.
  • Assess enterprise application landscapes, integration requirements, data environments, security constraints, and operating models.
  • Serve as a trusted technical advisor to clients and internal stakeholders.
  • Communicate complex AI, data, platform, and integration concepts to both technical and executive audiences.
  • Identify technical risks, dependencies, assumptions, and mitigation strategies early in engagements.
  • Develop technical prototypes and proofs of concept to validate solution feasibility and accelerate decision-making.
Solution Architecture & Engineering
  • Design end-to-end solutions that connect AI Agency capabilities with client systems, data sources, content repositories, workflows, and approval environments.
  • Build and configure production-quality integrations using APIs, webhooks, event-based patterns, secure file exchanges, connector frameworks, and enterprise integration platforms.
  • Develop client-specific configuration and deployment assets while preserving the integrity of the shared platform architecture.
  • Contribute hands‑on code across backend services, integration components, data pipelines, AI workflows, and supporting user experiences.
  • Design and implement AI-enabled workflows using large language models, retrieval‑augmented generation, agent orchestration, structured outputs, evaluation frameworks, and human approval checkpoints.
  • Implement authentication, authorization, identity federation, secrets management, data mapping, error handling, observability, and audit requirements.
  • Create technical prototypes when needed to validate feasibility, reduce ambiguity, or accelerate client decision‑making.
  • Support the transition from prototype to stable, supportable production deployment.
Enterprise Integrations & Data Engineering
  • Design, build, and maintain integrations using APIs, webhooks, event‑driven architectures, secure file exchanges, and enterprise integration platforms.
  • Develop system connectors to enterprise platforms including:
    • Veeva Vault / PromoMats
    • Salesforce Marketing Cloud
    • SharePoint
    • Adobe Experience Cloud
    • Snowflake
    • BigQuery
    • Vertex AI
  • Build and maintain data pipelines supporting reporting, analytics, and AI workflows.
  • Design data mapping, transformation, validation, and synchronization processes.
  • Partner with data engineering teams to support ETL/ELT and analytics initiatives.
Cloud Infrastructure, Deployment & Operations
  • Develop cloud-native solutions with a preference for Google Cloud Platform.
  • Implement CI/CD pipelines and automated deployment processes.
  • Build and maintain containerized applications using Docker and Kubernetes.
  • Ensure application reliability through monitoring, logging, alerting, and observability practices.
  • Maintain high standards of testing, code quality, scalability, and operational excellence.
  • Support production troubleshooting, performance optimization, and incident resolution.
Modeling inclusive behaviors and proactively managing bias.
  • All other duties as assigned.
The requirements listed below are representative of the experience, education, knowledge, skill and/or abilities required.
  • Bachelor's degree in Computer Science, Engineering, Information Systems, or equivalent practical experience.
  • 9+ years of experience in software engineering, solution engineering, technical consulting, platform implementation, or related engineering roles.
  • 5+ years designing and deploying production cloud-based AI, data, or enterprise application solutions.
  • Advanced programming skills in Python and at least one additional modern language such as JavaScript/TypeScript, C#, Java, or .NET.
  • Significant
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