GenAI Engineer | LLMs, NLP & Cloud (MLOps)

Posted 14 Hours Ago
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4 Locations
In-Office
Senior level
Fintech • Financial Services
The Role
Design, develop, and deploy GenAI/LLM and NLP solutions (training, fine-tuning, inference). Build RAG pipelines with vector DBs, implement cloud MLOps and CI/CD, ensure model governance, monitor performance, collaborate cross-functionally, and mentor junior engineers.
Summary Generated by Built In

Job Summary
Synechron is seeking a capable and innovative GenAI Engineer to design, develop, and deploy Generative AI solutions across enterprise platforms. This role blends hands-on GenAI, NLP, and data science with cross-functional collaboration to build scalable, secure, and production-ready AI-powered applications. The ideal candidate will advance GenAI initiatives, mentor teammates, and ensure alignment with governance, risk, and compliance requirements while delivering measurable business value.

Software Requirements

Required Skills (Essential)

  • Hands-on experience with Generative AI and large language models (LLMs) such as OpenAI, AWS Bedrock, or equivalent

  • Strong proficiency in Python for AI development, model integration, and data processing

  • Expertise with Retrieval-Augmented Generation (RAG) pipelines and serverless/event-driven architectures (e.g., SageMaker + Lambda)

  • Proficiency with vector databases and embeddings (e.g., Faiss, Pinecone)

  • Knowledge of deploying AI models on cloud platforms (AWS, Azure, or GCP) and basic MLOps concepts

  • Experience with AI model governance, data privacy, and security considerations in production

  • Familiarity with version control (Git) and collaborative development workflows

  • Understanding of the SDLC/ML lifecycle, experimentation, and model evaluation

Preferred

  • Containerization (Docker) and orchestration (Kubernetes) for AI services

  • CI/CD pipelines for AI workflows (GitHub Actions, Jenkins, Harness)

  • Model monitoring, bias mitigation, and safety in AI systems

  • Integration of AI solutions with existing enterprise data pipelines and APIs

  • AI tooling for code generation, data labeling, or automated testing

Overall Responsibilities

  • Design, develop, and optimize GenAI/AI-driven solutions and autonomous AI workflows

  • Lead implementation, deployment, and governance of AI models within CI/CD pipelines on cloud platforms

  • Mentor and guide junior AI engineers, promoting best practices in AI development, MLOps, and responsible AI

  • Identify, evaluate, and pilot new AI technologies and architectures to improve business processes

  • Collaborate with product, data, and platform teams to translate business requirements into scalable AI solutions

  • Stay current with AI/ML trends and industry developments; translate insights into actionable plans

  • Ensure governance, risk, and compliance considerations are embedded in AI initiatives

  • Develop and maintain AI architecture, deployment guidelines, and model governance documentation

  • Drive continuous improvement of AI delivery, automation, and operational efficiency

Technical Skills (By Category)

Programming Languages (Essential & Preferred)

  • Essential: Python

  • Preferred: R, Java, or C++ for integration or performance optimization

AI Frameworks & Libraries

  • Essential: PyTorch, TensorFlow, Hugging Face Transformers

  • Preferred: LangChain, SpaCy, OpenAI API usage patterns

Model Development & Deployment

  • Essential: Training, fine-tuning, evaluation, and deployment of LLMs; embeddings and vector-based retrieval

  • Preferred: Encryption layers, secure model serving, model governance practices

Cloud & Infrastructure

  • Essential: Experience deploying AI models on cloud platforms (AWS, Azure, GCP)

  • Preferred: Managed AI services (SageMaker, Vertex AI, Azure ML) and multi-cloud deployments

Data Management & Storage

  • Essential: Vector databases and data pipelines for AI workloads; data preprocessing

  • Preferred: NoSQL databases and data warehousing concepts; data lineage and governance

DevOps & MLOps

  • Essential: Version control (Git), CI/CD concepts, basic monitoring for AI pipelines

  • Preferred: Containerization (Docker), orchestration (Kubernetes), MLOps tools, model monitoring platforms

Security & Compliance

  • Essential: Data privacy, model security, and governance for AI deployments

  • Preferred: AI safety, bias detection/mitigation, auditable model governance

Experience Requirements

  • 4–9 years in AI/ML/Data Science with at least 3 years in GenAI/NLP

  • Proven experience delivering AI/ML solutions in production environments

  • Experience collaborating with cross-functional teams (product, data science, engineering, security)

  • Exposure to regulated industries and governance considerations is a plus

  • Alternative pathways: strong portfolio of GenAI/NLP projects or relevant certifications

Day-to-Day Activities

  • Design, train, fine-tune, and deploy GenAI/NLP models and autonomous AI components

  • Collaborate with product, data, and engineering teams to identify AI use cases and success metrics

  • Build and maintain AI pipelines (training, inference, monitoring) in cloud environments

  • Evaluate new AI techniques, tools, and platforms; lead proofs-of-concept

  • Monitor model performance, detect drift, and implement retraining or adjustments

  • Maintain comprehensive documentation on model architecture, data pipelines, and deployment steps

  • Ensure governance, risk, and compliance considerations are integrated into AI initiatives

  • Mentor junior AI engineers and promote knowledge sharing

Qualifications

  • Bachelor’s or Master’s degree in Computer Science, Data Science, AI, or related field

  • 4–9 years of experience in AI/ML/Data Science with at least 3 years in GenAI/NLP

  • Certifications in AI/ML, cloud platforms, or MLOps are advantageous

Professional Competencies

  • Strategic thinking and analytical problem-solving for AI applications

  • Clear communication and stakeholder management for technical and non-technical audiences

  • Leadership and teamwork with ability to mentor peers

  • Adaptability to evolving AI technologies and regulatory landscapes

  • Innovation mindset with a focus on scalable, responsible AI solutions

  • Time management and prioritization in a dynamic, fast-paced environment

S​YNECHRON’S DIVERSITY & INCLUSION STATEMENT
 

Diversity & Inclusion are fundamental to our culture, and Synechron is proud to be an equal opportunity workplace and is an affirmative action employer. Our Diversity, Equity, and Inclusion (DEI) initiative ‘Same Difference’ is committed to fostering an inclusive culture – promoting equality, diversity and an environment that is respectful to all. We strongly believe that a diverse workforce helps build stronger, successful businesses as a global company. We encourage applicants from across diverse backgrounds, race, ethnicities, religion, age, marital status, gender, sexual orientations, or disabilities to apply. We empower our global workforce by offering flexible workplace arrangements, mentoring, internal mobility, learning and development programs, and more.

All employment decisions at Synechron are based on business needs, job requirements and individual qualifications, without regard to the applicant’s gender, gender identity, sexual orientation, race, ethnicity, disabled or veteran status, or any other characteristic protected by law.

Candidate Application Notice

Skills Required

  • Hands-on experience with Generative AI and large language models (OpenAI, AWS Bedrock or equivalent)
  • Strong proficiency in Python for AI development, model integration, and data processing
  • Experience designing and implementing Retrieval-Augmented Generation (RAG) pipelines
  • Experience with serverless/event-driven architectures and AI deployment (e.g., SageMaker + Lambda)
  • Experience with vector databases and embeddings (e.g., Faiss, Pinecone)
  • Experience deploying AI models on cloud platforms (AWS, Azure, or GCP) and basic MLOps concepts
  • Experience with AI model governance, data privacy, and security considerations in production
  • Proficiency with version control (Git) and collaborative development workflows
  • Experience with PyTorch, TensorFlow, and Hugging Face Transformers
  • Training, fine-tuning, evaluation, and deployment of LLMs; embeddings and vector-based retrieval
  • 4-9 years in AI/ML/Data Science with at least 3 years in GenAI/NLP
  • Bachelor's or Master's degree in Computer Science, Data Science, AI, or related field
  • Containerization (Docker) and orchestration (Kubernetes) for AI services
  • CI/CD pipelines for AI workflows (GitHub Actions, Jenkins, Harness)
  • Experience with model monitoring, bias mitigation, and AI safety

Synechron Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Synechron and has not been reviewed or approved by Synechron.

  • Fair & Transparent Compensation Pay is frequently characterized as competitive, particularly relative to large service-consulting peers and in certain in-demand skill areas. Compensation sentiment appears strongest when staffing is stable on strong client engagements and for market-aligned roles in major hubs.
  • Healthcare Strength Healthcare coverage is often portrayed as a strong point in the U.S., with broad coverage and relatively favorable out-of-pocket experiences. Core medical, dental, and vision options are consistently described as meeting or exceeding a baseline expectation for consulting roles.
  • Equity Value & Accessibility Equity was made broadly accessible through a company-wide RSU grant tied to a major revenue milestone. This is positioned as a notable upside even if it is framed as a one-time recognition event rather than an ongoing program.

Synechron Insights

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The Company
HQ: New York, New York
12,827 Employees
Year Founded: 2001

What We Do

At Synechron, we believe in the power of digital to transform businesses for the better. Our global consulting firm combines creativity and innovative technology to deliver industry-leading digital solutions. Synechron’s progressive technologies and optimization strategies span end-to-end Artificial Intelligence, Consulting, Digital, Cloud & DevOps, Data, and Software Engineering, servicing an array of noteworthy financial services and technology firms. Through research and development initiatives in our FinLabs we develop solutions for modernization, from Artificial Intelligence and Blockchain to Data Science models, Digital Underwriting, mobile-first applications and more. Over the last 20+ years, our company has been honored with multiple employer awards, recognizing our commitment to our talented teams. With top clients to boast about, Synechron has a global workforce of 14,700+, and has 48 offices in 19 countries within key global markets. For more information on the company, please visit our website: www.synechron.com.

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