GenAI Engineering

Posted 5 Days Ago
Be an Early Applicant
2 Locations
In-Office
Mid level
Fintech • Financial Services
The Role
Lead the design, training, fine-tuning, deployment, and monitoring of LLMs, RAG systems, and multimodal agents. Build scalable cloud-based AI and MLOps pipelines for real-time inference, retraining, model evaluation, bias mitigation, security, and compliance. Collaborate with technical and business stakeholders to deliver enterprise automation solutions, optimize performance, document architectures, and mentor junior engineers.
Summary Generated by Built In

Job Summary
Synechron is seeking a seasoned Gen AI Engineer to lead the development and deployment of agentic AI solutions supporting enterprise business processes. This role involves designing, fine-tuning, and implementing large language models (LLMs), retrieval-augmented generation (RAG) systems, and multimodal agents, with a focus on delivery, performance, and operational security. The ideal candidate will leverage extensive experience in Python, cloud platforms, and AI frameworks, collaborating across teams to innovate and provide scalable, secure AI solutions that support business growth.

Software Requirements
 

Required Software Proficiency:

  • Python (latest stable version, e.g., Python 3.8+) — extensive hands-on experience supporting training, fine-tuning, and inference of large AI models (supporting 5–10 years)

  • AI Frameworks: PyTorch, TensorFlow — proven expertise in training, deploying, and optimizing deep learning models supporting generative and multimodal capabilities

  • Large Language Models: GPT, Claude, Llama, Gemini, or similar — experienced in prompt engineering, fine-tuning, and deployment support (supporting 3+ years)

  • Cloud Platforms: AWS, Azure, or GCP — experience deploying and managing scalable AI models supporting enterprise solutions (preferred support, 3+ years)

  • Model orchestration & management: MLflow, Kubeflow supporting model lifecycle, versioning, and monitoring (preferred support)

  • Data processing: Pandas, NumPy supporting data preparation and feature engineering support

Preferred Software Skills:

  • AI model evaluation and bias mitigation tools supporting model fairness and performance assessment

  • MLOps pipelines supporting continuous deployment, retraining, and automation support (Kubeflow, TFX, or similar)

  • Multi-modal processing frameworks supporting text, images, and audio inputs (preferred)

Overall Responsibilities

  • Lead the design, training, and deployment of large language models and multimodal agents supporting enterprise automation and insights

  • Develop scalable AI pipelines supporting real-time inference, retraining, and model monitoring in cloud environments

  • Collaborate with data scientists, platform engineers, and business stakeholders to translate use cases into operational AI systems supporting automation and decision support

  • Support prompt engineering, model evaluation, bias detection, and performance tuning for operational reliability and fairness

  • Automate deployment, versioning, and monitoring workflows supporting MLOps and responsible AI standards

  • Conduct model validation, interpretability checks, and security assessments supporting compliance in regulated environments

  • Support enterprise data pipelines supporting multimodal, retrieval-augmented, and knowledge-based AI systems supporting operational transparency

  • Document model architecture, training, tuning, deployment procedures, and operational metrics supporting audit and compliance regimes

Technical Skills (By Category)

  • Languages & Frameworks (Essential):

    • Python supporting large-scale model training, fine-tuning, and scripting for automation

    • PyTorch and TensorFlow supporting deep learning model development and deployment

    • Supporting libraries: Hugging Face Transformers, LangChain, support for RAG architecture and plugin integration

  • Data & Model Management:

    • Pandas, NumPy supporting data preparation, feature engineering, and validation

    • Model versioning tools: MLflow, Kubeflow supporting lifecycle management and deployment support

  • Cloud & Infrastructure:

    • AWS, Azure, or GCP supporting scalable deployment and inference in enterprise settings (preferred)

    • Container orchestration support: Docker, Kubernetes supporting scalable, cloud-native AI systems

  • Model Evaluation & Monitoring:

    • Tools supporting bias detection, fairness assessment, and inference monitoring (e.g., TensorBoard, custom dashboards)

Experience Requirements

  • 4+ years supporting enterprise AI/ML projects, including large language models, retrieval-augmented generation, and multimodal systems

  • Proven experience in deploying AI models supporting automation, knowledge management, and operational workflows

  • Extensive hands-on expertise in cloud AI deployment, orchestrating model lifecycle, and scalable inference support (preferably in regulated environments)

  • Experience supporting responsible AI practices, model fairness, and security in enterprise settings

Day-to-Day Activities

  • Develop, fine-tune, and deploy large language models and multimodal agents supporting enterprise automation workflows

  • Build and automate AI pipelines supporting training, inference, retraining, and model monitoring workflows in a cloud environment

  • Collaborate closely with data scientists, platform teams, and business units to deliver scalable AI solutions supporting operational efficiency

  • Conduct bias, fairness, and security evaluations supporting compliance and trustworthy AI practices

  • Troubleshoot and optimize model inference latency, retraining workflows, and deployment environments supporting enterprise scale

  • Automate model deployment, monitoring, and retraining pipelines supporting continuous delivery and performance tuning

  • Document AI architecture, models, training, and operational procedures supporting audit readiness and governance

Qualifications

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

  • 4+ years supporting enterprise AI/ML solutions, including large language models, retrieval-augmented systems, and multimodal agents

  • Certifications supporting cloud platforms (AWS, GCP, Azure) or responsible AI practices are advantageous (preferred)

  • Proven experience supporting or leading compliant, scalable AI systems supporting data privacy and fairness standards

Professional Competencies

  • Strong analytical and troubleshooting skills supporting complex model validation, bias detection, and model performance issues

  • Ready to work in hybrid model , for 3 days a week at client office.

  • Leadership qualities to guide and mentor junior AI engineers and promote best practices in responsible AI deployment

  • Stakeholder communication skills supporting requirement translation, reporting, and compliance documentation

  • Adaptability supporting evolving AI research, cloud services, security, and regulatory standards

  • Strategic thinking supporting scalable, secure, and ethical AI systems supporting enterprise objectives

  • Organisational skills to manage multiple models, retraining cycles, and deployment activities efficiently in complex environments

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

  • Bachelor's or Master's degree in Data Science, Computer Science, AI, or a related technical field
  • 4+ years of experience supporting enterprise AI/ML solutions
  • Experience with large language models, retrieval-augmented generation, and multimodal agents
  • Extensive hands-on Python experience supporting AI model training, fine-tuning, and inference
  • Expertise with PyTorch and TensorFlow
  • Experience with GPT, Claude, Llama, Gemini, or similar large language models
  • Experience deploying AI models for automation, knowledge management, and operational workflows
  • Experience with cloud AI deployment and scalable inference using AWS, Azure, or GCP
  • Experience orchestrating model lifecycles and deploying MLOps pipelines
  • Experience with responsible AI, model fairness, security, and data privacy standards
  • Experience with Pandas and NumPy for data preparation and feature engineering
  • Experience with Hugging Face Transformers and LangChain
  • Experience with Docker and Kubernetes
  • Ability to work hybrid, three days per week at the client office
  • Cloud platform or responsible AI certifications

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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